Molecular Structure by Diffraction Methods
Language: English
Published by Royal Society of Chemistry, 1978
- Hardcover
- New

Seller: moluna, Greven, Germanymoluna
AbeBooks seller since July 9, 2020
Condition: New
US$ 517.61
Quantity: Over 20 available
Add to basketItem description from seller
Reflecting the growing volume of published work in this field, researchers will find this book an invaluable source of information on current methods and applications.KlappentextrnrnReflecting the growing volume of published work in this fie.
Seller Inventory # 595095743
- Title
- Molecular Structure by Diffraction Methods
- Author
- Royal Society of Chemistry
- Publisher
- Royal Society of Chemistry
- Publication year
- 1978
- Condition
- New
- Binding
- Gebunden
- Language
- English
- ISBN 10
- 0851865577
- ISBN 13
- 9780851865577
Specialist Periodical Reports provide systematic and detailed review coverage of progress in the major areas of chemical research. Written by experts in their specialist fields the series creates a unique service for the active research chemist, supplying regular critical in-depth accounts of progress in particular areas of chemistry. For over 80 years the Royal Society of Chemistry and its predecessor, the Chemical Society, have been publishing reports charting developments in chemistry, which originally took the form of Annual Reports. However, by 1967 the whole spectrum of chemistry could no longer be contained within one volume and the series Specialist Periodical Reports was born. The Annual Reports themselves still existed but were divided into two, and subsequently three, volumes covering Inorganic, Organic and Physical Chemistry. For more general coverage of the highlights in chemistry they remain a 'must'. Since that time the SPR series has altered according to the fluctuating degree of activity in various fields of chemistry. Some titles have remained unchanged, while others have altered their emphasis along with their titles; some have been combined under a new name whereas others have had to be discontinued. The current list of Specialist Periodical Reports can be seen on the inside flap of this volume.
"Synopsis" may belong to another edition of this title.
Excerpt. © Reprinted by permission. All rights reserved.
Molecular Structure by Diffraction Methods Volume 6
A Review of the Recent Literature Up to September 1977
By L. E. Sutton, M. R. TruterThe Royal Society of Chemistry
All rights reserved.
Contents
Chapter 1 Electron Diffraction Determinations of Gas-phase Molecular Structures By L. Schäfer, 1,
Chapter 2 Molecular Mechanics Calculations By D. N. J. White, 38,
Chapter 3 Structures Calculated by the Molecular Mechanics Method By B. Beagley, 63,
Chapter 4 Chemists' Guide to Discovering Information about Molecular Structures in Crystalline Solids By M. R. Truter, 93,
Chapter 5 Neutron Diffraction By J. C. Speakman, 117,
Chapter 6 Silicates and Related Compounds By L. S. Dent Glasser, 132,
Chapter 7 Molecular Interactions By P. Murray-Rust, 154,
Chapter 8 Mono-, Oligo-, and Poly-saccharide Crystal Structures By G. A. Jeffrey and A. D. French, 183,
Chapter 9 Nucleic Acids and Their Constituents By S. Neidle, 224,
Chapter 10 The Structure of Globular Proteins By S. Bedarkar and T. L. Blundell, 241,
Chapter 11 Pharmaceutically Active Small Molecules By W. L. Duax, 261,
Author Index, 329,
CHAPTER 1
Electron Diffraction Determinations of Gas-phase Molecular Structures
BY L. SCHÄFER
1 Some Current Trends in Gas-phase Electron Diffraction Procedures
1977 marked the fiftieth anniversary of the first publication describing an electron diffraction experiment. To commemorate the event, the American Crystallographic Association called a special meeting. The historical factors leading to the discovery of this phenomenon were reviewed in a special paper.
To the critical observer of gas-phase electron diffraction (GED) as applied to structural chemistry, the record of this tool must appear somewhat mottled. The first successful structural studies of gaseous molecules by high-energy elastic electron scattering originally raised high hopes for a breakthrough in understanding the structure of matter. To some extent the technique has indeed contributed to such a development, but, like no other method of structural chemistry, GED combines quantitative precision with essential incompleteness because it gives only one-dimensional information. In addition to producing some very valuable and fundamental structural insight, interpretations of electron diffraction data have, therefore, sometimes engendered strikingly misleading structural models.
In view of these characteristic imperfections, it is important to take note of a striking metamorphosis of current GED techniques. Very recently gradual improvements of data analysis have produced a rather spectacular revolution of GED leading to a general enhancement of its versatility. It is now possible to supplement GED data with observables or their expectation values from other sources, by applying modes of analysis which were not known or not practical a decade or even a few years ago, The term 'electron diffraction' is, therefore, in a large number of current studies really the collective synonym for a matrix of complex and hybrid operations involving various consistently combined, different techniques. This development has had its main impact in two different areas, viz. in joint spectro-scopic–diffraction studies and, more recently, in hybrid theoretical–GED investigations.
In the former, rotational constants obtained from spectroscopy are incorporated into GED data analysis. Proper vibrational corrections are needed to make diffraction and spectroscopy compatible. As a result of this joint application of different observables, it was often possible to determine very accurately the structural parameters of molecules for which very little information could have been obtained by either GED or spectroscopy alone. It is only about ten years ago that the first consistent joint study appeared which made use of the proper vibrational corrections and a least-squares scheme.
In hybrid theoretical-GED investigations, calculated molecular parameters are incorporated into the data analysis in order to reduce the number of independent unknown variables. This has been done, for example, by optimizing the strain energies of model geometries employing molecular mechanics or quantum mechanical approximations. Thus in some cases, when several molecular models could be fitted to the same experimental diffraction pattern, their strain energies were used to discriminate against some of them. In other cases optimized molecular conformations were used as starting points for the least-squares analysis of the diffraction data. For relatively large molecules, the starting geometry can strongly bias the least-squares minimum, projecting in this manner the computational assumptions into the experimental results. With the continuing advancement of ab initio quantum mechanics, it seems now also possible to transfer calculated geometrical parameters (e.g. differences between nearly equal bond distances) directly, as constraints, into the least-squares scheme.
In other investigations, available force fields were used to derive mean amplitudes of vibration which are also, in principle, observables of the diffraction experiment. These theoretical amplitudes, or some of them, or amplitude differences calculated for a group of correlated distances, were then often used as constraints of the least-squares GED data refinement. Alternatively, the refined, experimental mean amplitudes of vibration for a particular model were compared with the theoretical ones.
The hybrid procedures mentioned are particularly satisfactory when the same force field is consistently applied to compute both the optimized geometries and the corresponding mean amplitudes. In such studies the optimum geometry and the force field which produced it are used together in the vibrational calculations, and calculated amplitudes and optimum geometry are used together in the least-squares scheme of the GED data analysis. The first consistent studies of this kind, which combined the experiences of many groups, used force fields derived from molecular mechanics in investigations of some relatively large cyclic hydrocarbon. In several laboratories ab initio procedures are now applied in the same consistent way for relatively complicated systems, demonstrating the further advance of this technique. The co-operative effect achieved by these combined procedures has often made it possible to give a plausible description of the unperturbed conformational behaviour of relatively complicated molecules, for which no safe statement could have been made on the basis of any of the applied techniques alone. In some cases ambiguities existing in previous publications could be resolved in this way. In other cases, some older conclusions even had to be corrected. It is very pleasant to note the complementarity of theory and experiment in such studies. Whereas theoretical procedures need guidance and confirmation by experimental observation the conclusions obtained by them in turn significantly reflect upon proposed data interpretations in many specific cases.
The optimism of the previous paragraphs must be qualified by a serious warning. Vapour-phase data of relatively complicated polyatomic molecules usually do not provide anything but circumstantial evidence for structural conclusions. In most cases the number of observables is smaller than the number of unknowns. There is a certain co-operative effect in consistently combining several different techniques, which makes the results of hybrid studies relatively reliable, but the quality of investigations of this kind depends profoundly on the quality of the applied techniques. Molecular mechanics calculations, for example, can in general provide satisfactory results when the conformational stituation of a particular test case represents an interpolation with respect to the model systems which were used to define the empirical force field involved, but in extrapolative cases they have often led to disaster. Unfortunately, it is often not clear whether a particular model of interest represents an interpolative or an extrapolative situation. In quantum mechanical calculations when ab initio procedures are used, uncertainties can often arise from the choice of basis sets and because it is in most cases not possible to optimize molecular geometries fully by relaxing all relevant parameters. When semi-empirical procedures are applied, one has often the impression that an indefinite range of possible models may be derived by adjusting the empirical parameters. In computations of mean amplitudes of vibration, finally, the force fields applied are generally underdetermined or affected by uncertainties of spectroscopic assignments. Because of this long list of potential dangers, hybrid theoretical–GED procedures must be used with caution. The results of such studies can only be as good as investigators are careful. To make use of published GED results requires, therefore, more than the reading of the abstract of a paper.
Many of the papers quoted in the following sections of this Report will demonstrate the changed methodology. Whenever possible, investigators are no longer satisfied merely to fit theoretical models to experimental radial distributions, as once was the conventional course, and indeed, the only practicable one. One has now the computional means to require, as a basic rule, that no GED study is concluded by a final molecular model which is energetically unstable, without giving special justification, and that no GED study is concluded, again without special justification, by a final theoretical model that reproduces experimental intensity only by using mean amplitudes of vibration which differ by orders of magnitude from calculated ones.
In observing these developments, the impression is conveyed that responsibly applied joint spectroscopic–GED and hybrid theoretical-GED procedures have created the effect of a quantum jump in the versatility of gas-phase electron diffraction that can be compared to the improvements which, in the earlier history of the field, were achieved by the invention of the rotating sector or by the fist application of automated densitometry. It seems safe to predict that the hybrid techniques mentioned will be found to be increasingly useful.
2 Structural Results from GED Studies of Individual Molecules
This Report departs from the conventions which have been followed in previous surveys of results. We present the structural results of the papers reviewed by tabulating the significant geometrical parameters of each molecule. Each molecule is identified in the Table by its gross formula and by its name. The names given are those used in the original papers; if no names were used originally, the I.U.P.A.C. recommendations for the nomenclature of molecules are applied. Following the name is a schematic formula or figure for each molecule to indicate its primary structure. Furthermore, there are some verbal comments and a summary, as seems useful, concerning the structural results and the procedures employed to obtain them.
We have chosen this format for the convenience of our readers. If there is interest in a particular molecule, a quick check of the gross formula register will tell whether or not this molecule has been the object of an investigation during the period covered by this volume. At the same time the most significant parameters of a molecule listed or details of its conformational behaviour will be quickly available at a glance.
The parameters reported are selected parameters chosen by a very critical and rather conservative evaluation of each paper. Numerical values are listed only for those parameters which were clearly resolved in significant features of the diffraction data. If a particular molecule contains a number of similar bond distances, for example, their values are given here only if they could be resolved in some way, for example by the analysis of non-bonded distance peaks or by the inclusion of spectroscopic observables in the analysis of the diffraction data. In many cases a comment is, therefore, made indicating that further unresolved parameters can be found in the original paper which are not reproduced in our table. In some of these cases the reader may feel that our evaluation and selection of parameters may have been too careful, but it is always easy to over-ride our personal opinion by reading the original papers. One should keep in mind, however, that an underdetermined set of experimental parameters does not represent a unique solution of the structural problem. On the other hand even an unresolved structure may give a helpful description of a particular molecule. Our restrictive procedure for the selection of molecular parameters to be presented here is, therefore, never a criticism of authors and their procedures but an attempt to avoid giving to numerical values an authority which their authors did not intend them to have.
We also found it useful to list the techniques applied in each structural study. We have used abbreviations for gas-phase electron diffraction (GED), microwave spectroscopy (MW), molecular mechanics conformational analyses (mol. mech.), quantum mechanical computations (for example, ab initio or CNDO/2), and calculations of vibrational molecular parameters employing methods of vibrational analysis (vib. calc.). The temperature of the diffraction experiment is also recorded since GED distances are thermal average values and since many studies are concerned with temperature-dependent conformational properties. The nozzle temperature is usually reported but no specific comment is made when only the temperature of the reservoir rather than that of the nozzle is specified in a particular paper. (In some papers T was not reported at all.)
The symbols used to define molecular structures, such as ra, rαetc., follow the usual conventions. Interatomic distances are represented by a solid line for a pair of directly bonded atoms [for example ra(C — C) is a bond between two carbon atoms]. This line does usually not indicate the multiplicity of the bond since this may often be difficult to define exactly. Multiplicities are indicated by a double or triple bar (for double and triple bonds, respectively) only for organic molecules with well defined bond distance systems and when a molecule contains different bonds between the same kinds of atoms so that a symbolic distinction is needed. Non-bonded distances are indicated by a dotted line between two atom pairs [for example ra (H ··· H)]. A bond angle between atoms X, Y, and Z is symbolized by [angle] (XYZ). Torsional angles are usually defined in detail. All distances are given in Å (0.1 nm) and all angles are given in degrees. Estimated errors are given in parentheses following each value and refer to the last significant figure of the parameter [ra(C — C)= 1.536(2) Å, means ra(C — C) = 1.536 [plus or minus] 0.002 Å, for example]. The quoted error estimates are those found in the primary papers. This should not be taken to mean that they should not be larger in some studies. In fact, in a few cases where reported error limits were obviously too small, we have increased their values, for example to indicate the actual reproducibility of molecular parameters. Mean amplitudes are usually not listed in this Report. For these, as for all the details of a particular structural study, the reader is referred to the original papers.
Compounds are arranged in two groups, containing inorganic and organic (or organometallic) molecules. In the gross formulae of organic molecules first the number of carbon atoms and then the number of hydrogen atoms is given followed by the symbols of other elements in alphabetical order. In inorganic compounds all elements are ordered alphabetically to construct the gross formula. For the same alphabetical sequence containing several molecules, the simplest systems are recorded first.
The papers reviewed in this part were published in the period August 1976 to July 1977. Because of the date of submission requested by the editors, some of the most recent issues of journals which are not so easily available to this Reporter (for example Eastern European journals) could not be reviewed. Personal contacts made it possible to present an updated list of some but not all of the references of this kind. The same problem obviously existed also for the Reporter of this part of the previous volume (Vol. 5) of this series. We have, therefore, also included in our Report those references which appeared shortly before August 1976 but which were not available to the previous Reporter.
3 GED Papers of a General Nature without a Specific Molecule
In addition to the papers listed in Section 2, a number of publications should be mentioned here which are somehow involved with high-energy gas-phase electron diffraction work without being primarily concerned with a single structural problem. These are review-type papers, procedure-related publications, and theoretical papers and reports on calculations referring directly to a particular GED study.
In the first category reviews and summaries have been published of the GED papers which appeared between August 1975 and August 1976; of some aspects of the experimental determination of average and equilibrium structures of polyatomic gas molecules by diffraction and spectroscopic methods; 1 of some results of applying hybrid theoretid–GED procedures to the conformational analysis of some cyclic systems; and of some of the structural parameters obtained for a number of unsaturated organo-tin compounds.
A book has been issued dealing with the molecular geometries of co-ordination compounds in the vapour phase incorporating the results of both GED and MW studies. In addition to presenting some general concepts, the book offers a systematic discussion of the structural trends observed for co-ordination compounds in the vapour phase.
Furthermore, an introduction to GED as a tool of structural chemistry has been written as one of a series of feature articles directed to non-specialists.
Special emphasis must be given in this context to an excellent compilation of the structure data of free polyatomic molecules published between 1960 and June 1974. Parameters were listed in this publication after a critical re-estimation of their uncertainties. For free molecules, these tables are a very useful continuation of the complete listing of molecular structures published up to 1959. This volume is also noteworthy because an excellent discussion of the characteristics of some of the techniques used in vapour-phase structural chemistry is given in its introductory section (see also these sections of ref. 97).
(Continues...)
Excerpted from Molecular Structure by Diffraction Methods Volume 6 by L. E. Sutton, M. R. Truter. Copyright © 1978 The Chemical Society. Excerpted by permission of The Royal Society of Chemistry.
All rights reserved. No part of this excerpt may be reproduced or reprinted without permission in writing from the publisher.
Excerpts are provided by Dial-A-Book Inc. solely for the personal use of visitors to this web site.
"About the title" may belong to another edition of this title.
Shipping rates from Germany to U.S.A.
| Item | 26 to 60 business days | 26 to 60 business days |
|---|---|---|
| First item | US$ 55.76 | US$ 55.76 |
Payment methods
- Bank Wire Transfer
- Check
- Paypal
Store description
Online Handel nur mit Neubüchern
Seller's business information
Moluna GmbH
Engberdingdamm 27
Greven, Germany 48268
Terms of sale
Instructions for revocation/
Standard Business Terms and customer information/ data protection declaration
Revocation right for consumers
(A ‘consumer’ is any natural person who concludes a legal transaction which, to an overwhelming extent, cannot be attributed to either his commercial or independent professional activities.)
Instructions for revocation
Revocation right
You have the right to revoke this contract within one month without specifying any reasons.
The revocation period is one month with effect from the day,
-
on which you or a third party nominated by you, which is not the carrier, had taken possession of the products, provided you had ordered one or more products within the scope of a standard order and this/these product/products is/are delivered uniformly;
-
on which you or a third party nominated by you, which is not the carrier, had taken possession of the last product, provided you had ordered several products within the scope of a standard order and these products are delivered separately;
-
on which you or a third party nominated by you, which is not the carrier, had taken possession of the last part delivery or the last unit, provided you had ordered a product, which is delivered in several part deliveries or units;
In order to exercise your revocation right, you must inform us (Moluna GmbH, Engberdingdamm 27, 48268 Greven, Telephone number: 02571/5 69 89 33, Fax number: 02571/5 69 89 30, E-Mail address: abe@moluna.de) of your decision to revoke this contract by means of a clear declaration (e.g. a letter sent via post, fax or email). You can use the enclosed specimen revocation form for this, which however is not mandatory.
In order to safeguard the revocation period, it is sufficient that you send the notification about the exercise of the revocation right before the expiry of the revocation period.
Consequences of the revocation
If you revoke this contract, we shall repay all the payments, which we received from you, including the delivery costs (with the exception of additional costs, which arise from that fact that you selected a form of delivery other than the most reasonable standard delivery offered by us), immediately and at the latest within 14 days from the day on which we received the notification about the revocation of this contract from you. We use the same means of payment, which you had originally used during the original transaction, for this repayment unless expressly agreed otherwise with you; you will not be charged any fees owing to this repayment.
We can refuse the repayment until the products are returned to us or until you have furnished evidence that you have sent the products back to us, depending on whichever is earlier.
You must return or transfer the products to us immediately and, in any case, at the latest within 14 days with effect from the day on which you inform us of the revocation of this contract. The deadline is maintained if you send the products before the expiry of the 14 day deadline.
You bear the direct costs for returning the products.
You must pay for any depreciation of the products only if this depreciation can be attributed to any handling with you that was not necessary for checking the condition, features and functionality of the products.
Criteria for exclusion or expiry
The revocation right is not available for contracts
for delivery of products, which are not prefabricated and for whose manufacturing an individual selection or stipulation by the consumer is important or which are clearly tailored to the personal requirements of the consumer;
for delivery of products, which can spoil quickly or whose use-by date would be exceeded quickly;
for delivery of alcoholic drinks, whose price was agreed at the time of concluding the contract, which however can be delivered 30 days after the conclusion of the contract at the earliest and whose current value depends on the fluctuations in the market, on which the entrepreneur has no influence;
for delivery of newspapers, periodicals or magazines with the exception of subscription contracts.
The revocation right expires prematurely in case of contracts
for delivery of sealed products, which are not suitable for return for reasons of health protection or hygiene if their seal has been removed after the delivery;
for delivery of products if they have been mixed inseparably with other goods after the delivery, owing to their condition;
for delivery of sound or video recording or computer software in a sealed package if the seal has been removed after the delivery.
Specimen - revocation form
(If you wish to revoke the contract, please fill up this form and send it back to us.)
-
To Moluna GmbH, Münsterstr. 105, 48268 Greven, Fax number: 02571/5 69 89 30, Email address: abe@moluna.de :
-
I/we () herewith revoke the contract concluded by me/ us () regarding the purchase of the following products ()/
the provision of the following service () -
Ordered on ()/ received on ()
-
Name of the consumer(s)
-
Address of the consumer(s)
-
Signature of the consumer(s) (only in case of a notification on paper)
-
Date
(*) Cross out the incorrect option.
Standard Business Terms and customer information / data protection declaration
I. Standard business terms
§ 1 Basic provisions
(1) The following terms and conditions of business apply for all contracts concluded with us as the supplier (Moluna GmbH) via the websites AbeBooks and/or ZVAB. Unless otherwise agreed, the inclusion of your own terms and conditions is explicitly rejected.
(2) A ‘consumer’ in the sense of the following regulations is every natural person who concludes a legal transaction which, to an overwhelming extent, cannot be attributed to either his commercial or independent professional activities. The term ‘businessman’ refers to every natural person, legal person or legally responsible partnership that concludes a legal transaction in pursuance of his/its independent professional or commercial activity.
§ 2 Conclusion of the contract
(1) The subject-matter of the contract is the selling of products .
(2) If an article is placed by us with AbeBooks or ZVAB, the activation of the page on AbeBooks or ZVAB shall involve the binding offer to conclude a contract under the terms and conditions contained in the article page.
(3) The contract shall become effective via the online shopping cart system as follows:
The products intended for purchase are moved to the "shopping cart". You can select the "Shopping Cart" using the appropriate buttons on the navigation bar and make changes there at any time.
After calling up the “Checkout” page and entering the required personal data and payment and shipping conditions, all order information is then displayed again on the order summary page.
Before submitting the order, you have the ability once more to review or change any information here (you may also use the "back" button on the Internet browser), or to cancel the purchase.
By clicking the “Buy now” button to submit the order, you declare your legally binding acceptance of the order which makes the contract effective.
(4) The execution of the order and the sending of all the details necessitated by the conclusion of the contract take place via e-mail, in a partially-automated manner. Consequently, you have to ensure that the e-mail address that you have deposited with us is the correct one, and that the receipt of the respective e-mails is guaranteed. In particular, you have to ensure that the respective e-mails are not blocked by a SPAM filter.
§ 3 Right of retention, reservation of proprietary rights
(1) You can only exercise a right of retention if the situation in question involves claims arising from the same contractual relationship.
(2) The goods remain our property until the purchase price is paid in full.
(3) If you are a businessman, the following conditions also apply:
a) We retain ownership of the goods until all the claims arising from the ongoing business relationship have been settled in full. The goods subject to retention of title may not be pledged or transferred by way of security before ownership of the said goods changes hands.
b) You can re-sell the goods within the framework of an orderly transaction. In this regard, you hereby cede all the claims amounting to the magnitude of the billing amount that accrue to you as a result of the re-selling operation to us, and we accept the cession. Furthermore, you are authorised to collect the claim in question. However, insofar as you do not discharge your payment obligations in an orderly fashion, we reserve the right to collect the claim ourselves.
c) In a situation involving the combination and amalgamation of the goods subject to retention of title, we acquire co-ownership of the newly-formed item. This co-ownership corresponds to the ratio that exists between the invoice value of the goods subject to retention of title and the other processed items at the time of processing.
d) If you make a request of this nature, we shall be obligated to release the securities that are due to us, to the extent that the realisable value of our securities exceeds the claim to be secured by more than 10%. We are responsible for selecting the securities to be released.
§ 4 Warranty
(1) The statutory warranty rights are applicable.
(2) As a consumer, you are requested to promptly check the product for completeness, visible defects and transport damage as soon as it is delivered, and promptly disclose your complaints to us and the shipping company in writing. Even if you do not comply with this request, it shall have no effect on your legal warranty claims.
(3) If a characteristic of the goods deviates from the objective requirements, the deviation shall only be deemed to be agreed if you were informed of the same by us before submitting the contractual declaration and the deviation was expressly and separately agreed between the contracting parties.
(4)
Insofar as you are an entrepreneur, the following shall apply in deviation from the above warranty provisions:
a) Only our own specifications and the manufacturer's product description shall be deemed agreed as the quality of the goods, but not other advertising, public promotions and statements by the manufacturer.
b) In the event of defects, we shall, at our discretion, provide warranty by rectification of the defect or subsequent delivery. If the rectification of defects fails, you may, at your option, demand a reduction in price or withdraw from the contract. The rectification of defects shall be deemed to have failed after a second unsuccessful attempt, unless the nature of the goods or the defect or other circumstances indicate otherwise. In the event of rectification of defects, we shall not be obliged to bear the increased costs arising from the transport of the goods to a place other than the place of performance, unless such transport is in accordance with the intended use of the goods.
c) The warranty period shall be one year from delivery of the goods. The shortening of the period shall not apply
- for culpable damage attributable to us arising from injury to life, limb or health and for other damage caused intentionally or by gross negligence;
- insofar as we have fraudulently concealed the defect or have assumed a guarantee for the quality of the item;
- in the case of items which have been used for a building in accordance with their customary use and have caused its defectiveness;
- in the case of statutory rights of recourse that you may assert against us in connection with rights arising from defects.
§ 5 Choice of law, place of fulfilment, jurisdiction
(1) German law shall apply. This choice of law only applies to customers if it does not result in the revocation of the protection guaranteed by the mandatory provisions of the law of the country in which the respective customer’s usual place of residence is located (benefit-of-the-doubt principle).
(2) If you are not a consumer, but a businessman, a legal entity under public law or an institutional fund governed by public law, our place of business is the place of jurisdiction as well as the place of fulfilment for all services that follow from the business relationships that exist with us. The same condition applies to situations in which you are not associated with a general place of jurisdiction in Germany or the EU, as well as situations in which the place of residence or the usual place of residence is not known at the time of commencement of proceedings. This has no bearing on the capacity to call upon the court associated with another place of jurisdiction.
(3) The provisions of the UN Convention on Contracts for the International Sale of Goods are explicitly inapplicable.
II. Customer information
- Identity of the seller
Moluna GmbH
Engberdingdamm 27
48268 Greven
Germany
Telephone: 02571/5698933
E-Mail: abe@moluna.de
- Information regarding the conclusion of the contract
The technical steps associated with the conclusion of the contract, the contract conclusion itself and the correction options are executed in accordance to the regulations "conclusion of the contract" in our standard business terms (part I.).
- Contractual language, saving the text of the contract
3.1 Contract language shall be English.
3.2 The complete text of the contract is not saved with us. Before the order is sent, the contract data can be printed out or electronically saved using the browser’s print function. After the order is received by us, the order data, the legally-mandated details related to distance selling contracts and the standard business terms are re-sent to you via e-mail.
- Main features of the product or service
The key features of the goods and/or services can be found in the respective quote.
- Prices and payment arrangements
5.1 The prices mentioned in the respective offers represent total prices, as do the shipping costs. They include all the price components, including all the incidental taxes.
5.2 The dispatch costs that are incurred are not included in the purchase price. They can be viewed by clicking the appropriate button on our website or in the respective quote, are shown separately over the course of the order transaction and must additionally be borne by you, insofar as free delivery is not confirmed.
5.3 The payment methods that are available to you are shown by clicking the appropriate button on our website or are disclosed in the respective quote.
5.4 Unless otherwise specified for the respective payment methods, the payment claims arising from the contract that has been concluded become payable immediately.
- Delivery conditions
6.1 The delivery conditions, delivery date and existing supply restrictions, if applicable, can be found by clicking the appropriate button on our website or in the respective quote.
Unless a different period is specified in the item description or our delivery conditions, the goods are delivered within 3-5 days after the conclusion of the contract (in case an advance payment has been agreed upon, after the payment authorisation).
6.2 If you are a consumer, the following is statutorily regulated: The risk of the sold item accidentally being destroyed or degraded during shipping only passes over to you when the item in question is delivered, regardless of whether or not the shipping operation is insured. This condition does not apply if you have independently commissioned a transport company that has not been specified by us or a person who has otherwise been appointed to execute the shipping operation.
If you are a businessman, the delivery and shipping operations take place at your own risk.
- Statutory warranty right
Liability for defects is governed by the “Warranty” provisions in our General Terms and Conditions of Business (Part I).
last update: 01.01.2022
Data protection declaration
Unless stated otherwise below, the provision of your personal data is neither legally nor contractually obligatory, nor required for conclusion of a contract. You are not obliged to provide your data. Not providing it will have no consequences. This only applies as long as the processing procedures below do not state otherwise.
“Personal data” is any information relating to an identified or identifiable natural person.
Responsible person
Contact us at any time. The contact details of the person responsible for data processing can be found in our legal notice.
Collection, processing, and transfer of personal data in orders
When you submit an order we only collect and use your personal data insofar as this is necessary for the fulfilment and handling of your order as well as processing of your queries. The provision of data is necessary for conclusion of a contract. Failure to provide it will prevent the conclusion of any contract. The processing will occur on the basis of Article 6(1) b) GDPR and is required for the fulfilment of a contract with you.
Your data is transferred here for example to the shipping companies and dropshipping providers, payment service providers, service providers for handling the order and IT service providers that you have selected. We will comply strictly with legal requirements in every case. The scope of data transmission is restricted to a minimum.
Duration of storage
After contractual processing has been completed, the data is initially stored for the duration of the warranty period, then in accordance with the retention periods prescribed by law, especially tax and commercial law, and then deleted after the period has elapsed, unless you have agreed to further processing and use.
Rights of the affected person
If the legal requirements are fulfilled, you have the following rights according to art. 15 to 20 GDPR: Right to information, correction, deletion, restriction of processing, data portability. You also have a right of objection against processing based on art. 6 (1) GDPR, and to processing for the purposes of direct marketing, according to art. 21 (1) GDPR.
Right to complain to the regulatory authority
You have the right to complain to the regulatory authority according to art. 77 GDPR if you believe that your data is not being processed legally.
Right to object
If the data processing outlined here is based on our legitimate interests in accordance with Article 6(1)f) GDPR, you have the right for reasons arising from your particular situation to object at any time to the processing of your data with future effect.
If the objection is successful, we will no longer process the personal data, unless we can demonstrate compelling legitimate grounds for the processing that outweigh your interests or rights and freedoms, or the processing is intended for the assertion, exercise or defence of legal claims.
last update: 10.01.2022