Colloid Science : Volume 3
Language: English
Published by Royal Society Of Chemistry Jan 1979, 1979
- Softcover
- New

Seller: AHA-BUCH GmbH, Einbeck, GermanyAHA-BUCH GmbH
AbeBooks seller since August 14, 2006
Condition: New
US$ 968.99
Quantity: 2 available
Add to basketItem description from seller
Neuware - 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.…
Seller Inventory # 9780851865287
- Title
- Colloid Science : Volume 3
- Author
- Douglas H Everett
- Publisher
- Royal Society Of Chemistry Jan 1979
- Publication year
- 1979
- Condition
- Neu
- Binding
- Taschenbuch
- Language
- English
- ISBN 10
- 0851865283
- ISBN 13
- 9780851865287
- Item weight
- 444 grams
- Dimensions
- 216x140x20 mm
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.
"Synopsis" may belong to another edition of this title.
Excerpt. © Reprinted by permission. All rights reserved.
Colloid Science Volume 3
A Review of the Literature Published 1974-1977
By D. H. EverettThe Royal Society of Chemistry
All rights reserved.
Contents
Chapter 1 Adsorption at the Gas/Solid Interface By D. Nicholson and K. S. W. Sing, 1,
Chapter 2 Adsorption at the Solid/Liquid Interface: Non-electrolyte Systems By D. H. Everett and R. T. Podoll, 63,
Chapter 3 Insoluble Monolayers By G. T. Barnes, 150,
Chapter 4 Emulsions By B. Vincent and S. S. Davis, 193,
Chapter 5 Micellization in Aqueous Solution By J. F. Goodman and T. Walker, 230,
Chapter 6 Structure and Reactivity in Micellar Aggregates By J. M. Brown, 253,
Chapter 7 Spectroscopic Measurements at the Gas/Solid Interface By T. Cosgrove, 293,
CHAPTER 1
Adsorption at the Gas/Solid Interface
BY D. NICHOLSON and K. S. W. SING
1 General Aspects of Physisorption
The results of a large number of studies of physisorption at the gas/solid interface were reported in 1975 and 1976. As in the past, a great deal of research effort was devoted to the study of physisorption isotherms, but also increased interest was shown in the role of adsorption in the transport of gases through porous media. For this reason, the present Report deals in some detail with adsorption and surface effects in the context of the flow and diff usion of gases.
The mechanism of adsorption in micropores is another major topic which has featured in many recent research publications. Much of this work has been concerned with molecular sieve zeolites, which possess regular pore structures within their crystalline framework. Zeolites are often regarded as model microporous solids, but it has also been shown that the slit-shaped micropores in some molecular sieve carbons are remarkably uniform and are therefore also suitable for fundamental studies of micropore filling.
Other important areas of research, which have been discussed in previous Reports, include different types of gas-solid interactions and interpretation of the adsorption isotherm. It would be impossible in the present Report to discuss in detail these and all other aspects of physisorption, but attention is drawn to a few areas in which notable advances have been made during the period under review.
The Potential Energy of Adsorption. - The adsorbate-adsorbent interaction is fundamental to all physisorption processes. Pairwise summation continues to be the most widely used method for the calculation of adsorption energies, but for some purposes this has been replaced by the approximation of integration over a solid continuum as a model for the adsorbent. In an important general treatment of the interaction of gases with solid surfaces, Steele has compared these two methods for the calculation of adsorption potentials of noble gas atoms and has shown that the potential from the continuum calculation is a comparatively poor approximation. This is especially the case when the adsorbate atoms are relatively small. A rather more satisfactory approximation is given 1 by treating each layer of the adsorbent parallel to the surface as a continuum and then summing the resulting contributions from the layers.
The method of pairwise summation itself is open to criticism, however, and there is little doubt that the true dispersion potential between an isolated pair of atoms is not given exactly by such frequently used forms as the (12:6) Lennard-Jones potential. Recent work on the computer simulation of liquid properties has added strong support to the view that the (12:6) potential fortuitously compensates for neglected three-body (and perhaps higher order) terms. It must be kept in mind that such compensation effects may not operate in quite the same manner with asymmetric interfacial systems.
The dispersion energy contribution, [empty set]D, to the adsorbent-adsorbate potential energy can be expressed as a sum of terms (each of which is itself a summation over pairs, triplets, or higher order groupings of atoms).
Here &8364;(2) is the pairwise term, &8364;(3)etc. represent the higher order interactions, and the locations of the force centres are given by the vectors rietc. Schmit has estimated the importance of the three-body contribution in equation (1) for an Ar atom over the (100) face of an Ar crystal. The pairwise interaction &8364;(2) was calculated from the London formula. The triple-dipole contribution &8364;(3), which is repulsive, was calculated from the Axelrod and Teller formula with the triangle of atoms ijk formed from the adsorbate atom and two atoms of the adsorbent. The contribution from the triple-dipole interactions for Ar self-adsorbed on the (100) face of an Ar lattice was found to be of the order of 5% of the pairwise dipole-dipole term.
A new and promising approach to the calculation of the adsorbate-adsorbent energy, which should also contribute to the understanding of the role of three-body forces, is based on the work of Gordon and Kim. Their method was originally applied with success to pairs of closed shell atoms. The interaction between pairs was calculated on the assumption that no rearrangement of the separate electron densities occurs when the atoms approach each other. As the first step in the calculation the electron densities, [??](r), of the atoms are found as the square of a set of Hartree-Fock wave-functions. These electron densities are then used to calculate the four terms which contribute to the interaction: (i) the direct Coulomb energy, (ii) the kinetic energy, (iii) the exchange energy, and (iv) the correlation energy. The last three terms are obtained with the aid of standard theory for a homogeneous electron gas. The method was found to be particularly successful in the hitherto difficult region around the potential minimum, although the potential at greater separations (where perturbational dispersion force theory is generally considered satisfactory) was less well described. The essential requirement for the application of the method is thus a knowledge of suitable wave-functions.
Bennett used the Gordon and Kim method to calculate the interaction of Ar over an Ar substrate. Pairwise summation was considered to be adequate for calculation of the direct coulombic contributions, which are linear in electron density. The kinetic, exchange, and correlation contributions, however, are non- linear in densities and were treated collectively over a limited region of the adsorbent in the vicinity of adsorbate atom. An adsorbate-adsorbent potential was also estimated in the conventional way by direct summation of Ar pair energies obtained from the Gordon and Kim method. According to these calculations the non-additive potential could be as much as 12% above that from pairwise summation. Even more significant was a 70% reduction in the barrier height between adsorption sites.
The Gordon and Kim method has been applied to noble gases over a graphite substrate by Freeman. The surface model was a single plane of hexagonally packed carbon atoms for which a band wave function was used. The results were considered to be in error in that they gave a much more shallow potential well than that found by Steele. Discrepancies were attributed to two causes; the use of a minimum basis set in the calculation of the graphite wave-functions, and the inadequate treatment of long-range dispersion forces which is inherent in the method . Freeman also studied 10 the adsorbate-adsorbate interactions over a graphite surface. It was found that when the adsorbate was at the equilibrium distance from the surface, these potentials were 12 to 20% more repulsive than for the corresponding gas phase pairs. These results are of the same order of magnitude as those calculated from experimental data and it was suggested that improved wave functions should bring theory and experiment into closer agreement.
The importance of contributions other than pairwise-additive to the potential has been emphasised by Mahanty and Ninham whose approach to the adsorption problem was along the lines originally developed for the prediction of dispersive interparticle attractions in colloid science. In this method the interaction is considered from the point of view of the electromagnetic field created by atomic dipole oscillators and the effect on its energy of the presence of polarisable interacting bodies. The methods and applications of the theory have been described in a recent book. In the context of physisorption, the solid adsorbent and layers of adsorbate were treated as dielectric continua. Allowance for incomplete filling of a layer was made through a 'mean field' type of approximation, which is consistent with the dielectric continuum model. The method incorporates higher order interaction terms in a natural manner. No numerical evaluation of the results was made, but it is interesting to note that the sole requirement for such an evaluation is knowledge of the frequency dependence of the various dielectric constants involved. In contrast to the Gordon and Kim method, this approach can account for long-range contributions to the dispersive force interactions. At the same time, no description of lateral periodicity in the vicinity of the adsorbent surface, nor of the repulsive side of the potential well, emerges from the method. As they stand, these two theories are therefore to some extent complementary. However, both agree on the weight of the theoretical argument in favour of the inclusion of higher order interaction terms in the calculation of adsorption potentials. The quantitative importance of these terms is a question which remains to be settled.
Until recently, calculations of adsorbate-adsorbent potentials have incorporated the assumption that the absorbent could be assumed to have the same structure at its surface as in the bulk material. In surface energy calculations, on the other hand, surface relaxation effects were taken into account many years ago and the subject was reviewed in some depth by Benson and Yun. An important conclusion which emerges is that relaxation due to asymmetry of the surface environment can cause considerable alteration of the lattice spacing in a direction normal to the interface. This effect is especially important in ionic lattices, but less so for noble gas crystals. Pisani, Ricca, and their co-workers found that layer relaxation in graphite has a negligible effect on the adsorbate-adsorbent potential for noble gas adsorbates. In a more detailed study of Ne adsorption on Xe crystals, the relaxation of different crystal planes and of edges was considered. The total energy of the ground state was calculated using a trial wave function and a variational procedure. Relaxation was found to be responsible for a decrease of about 1% over a (100) face and an increase by a similar amount over a (110) face. It is noteworthy that this effect raises the potential barrier which limits migration from one face to another.
The effect of relaxation on adsorption interaction with ionic lattices is apparently much more important. House and Jaycock found that the adsorption of Ar and Kr on a relaxed ( 100) surface of NaCl and KCl increases the depth of the adsorbate-adsorbent potential well over the cation by about 30% and 7%, respectively. The effect was much smaller for other sites and surface barriers are therefore considerably modified by relaxation effects. In the case of Kr on KCl the absolute minimum of the potential moves from a mid-cell position before relaxation to the cation position after relaxation. In a subsequent study considerable modification of the surface second virial coefficients was found to occur as a result of relaxation effects. Large changes in the calculated potentials for N2 and H2 over (100) NaCl were also found by Ben Ephraim and Folman, the increases in the adsorption energy over cation sites amounting to 20% and 25% for H2 and N2, respectively.
In the above studies of ionic solids, the potentials were calculated by using a single-charge model for the ions. A shell model, which allows for ion polarization, has not yet been investigated in the context of adsorption, but presumably would provide a more realistic approach. A further improvement would result from the consideration of relaxation in the adsorbate-adsorbent system taken as a whole.
Structure of Adsorbed Monolayers. - A number of newer physical methods (primarily particle scattering techniques) have been widely used for the study of chemisorption systems; many of these methods have received attention inter alia in the series of Specialist Periodical Reports on 'Surface and Defect Properties of Solids'. In recent years, some of these methods have been applied also to physisorption systems. For example, the application of LEED has been discussed in some detail by Webb and Cohen. A critical comparison of the application of LEED and Auger measurements in the study of krypton on graphite has been made by Kramer and Suzanne. Dash and his co-workers have used neutron scattering to study the structure of adsorbed argon and nitrogen on graphite (Grafoil). An interesting modification has been introduced by Venables and his co-workers, who have employed the technique of transmission high energy electron diffraction (THEED) for the study of xenon adsorbed on a thin single crystal of graphite. These scattering methods are capable of providing more direct and detailed information about the structure of the adsorbed layer than can be obtained from the classical analysis of thermodynamic adsorption data.
Graphitized carbon surfaces have been studied extensively for a number of years. Recently the emphasis in fundamental investigations has moved towards graphite-noble gas systems at low surface coverage and this work has involved the use of graphitized carbon blacks and exfoliated graphites of high surface purity. These materials offer the great advantage that at the present time they appear to provide the best available approximation to a uniform homogeneous surface.
Much of the recent work has been concerned with the adsorption of Xe. A combination of techniques has enabled a phase diagram to be constructed for the Xe-graphite adsorption system over a wide range of temperature and pressure (Figure 1). The monolayer region itself may be sub-divided into the two dimensional gaseous, liquid, and solid co-existence regions with a triple point at 99 K and a critical temperature of 117 K. As a result of LEED studies, it was established that the solid Xe phase has a hexagonal ([square root of 3] x [square root of 3]) structure and it has been generally assumed that this indicates that the Xe atoms are located in a regular array and occupy one third of all the potential wells at the centre of the carbon hexagons. However, the investigations of Venables and his coworkers have shown that it is possible to determine a 'misfit parameter', m(T,p), which is defined in terms of the nearest neighbour distance, a, between Xe atoms;
a = 0.4258[1 + m(T,p)], (2)
where 0.4258 nm is the spacing between the available potential energy wells. It was found that condensation within the Xe monolayer takes place at m = 0.060 ± 0.005 nm.
The compression of a monolayer from the localized epitaxial state to a close- packed state has been suggested as the origin of the sub-steps which have been identified on the stepwise isotherms of Kr and Xe on graphitized carbon blacks. Sub-steps have also been noted in Ar and N2 isotherms on graphitized carbon black at 77 K, but at this temperature are more likely to originate as a result of the transformation from the liquid-like state to the close-packed solid.
The existence of the epitaxial structure for Kr on the basal plane of graphite has been confirmed by the application of LEED. In the work of Kramer and Suzanne, the Kr isotherm was measured at 60 K using both Auger spectroscopy and LEED and it was found that the transition step from two-dimensional gas to the solid state was not vertical - in contrast to the behaviour of Xe. This effect was attributed to compression of the condensed state during the phase transition rather than to surface heterogeneity, but this observation seems to merit further consideration. In this connection, the careful experimental work of Antoniou of Ne adsorption on graphitized carbon over the temperature range 1.5-30 K, has revealed a sharp fall in isosteric enthalpy at very low surface coverage. This effect appears to be associated with a small amount of surface heterogeneity. A similar conclusion was reached in the work of Goellner et.al. on helium adsorption on Grafoil.
A few recent studies have been made of the structure of noble gas monolayers on clean metal surfaces. In the work of Papp and Pritchard, new diffraction spots were identified in the LEED pattern when the close-packed monolayer of Xe was formed on Cu(311), corresponding to a Xe-Xe spacing of 0.445 ± 0.005 nm. In another study, Roberts and Pritchard 3 5 have reported the results of LEED studies of the adsorption of Kr and Xe at 55 and 77 K, respectively, on Ag ( 111) and Cu (211) surfaces. They conclude that the LEED results support the view that the monolayer structures of Xe and Kr on metallic surfaces are generally hexagonal close-packed. Webb and Cohen, working at 25 K, have suggested that the Xe-Xe spacing on Ag (111) is 1.8% larger than in the bulk, but is not in registry with the substrate. Adsorption data over a wide range of coverage were obtained by Carden and Pierotti for Kr on Cu (111) over the temperature range 78-108 K and it was concluded that with this system surface periodicity has a minor effect on the packing of the adsorbate atoms.
(Continues...)
Excerpted from Colloid Science Volume 3 by D. H. Everett. Copyright © 1979 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 | 5 to 7 business days | 7 to 10 business days |
|---|---|---|
| First item | US$ 35.00 | US$ 35.00 |
Payment methods
- Bank Wire Transfer
- Check
- Paypal
Store description
Das Unternehmen AHA-BUCH GmbH: Seit der Gründung von AHA-BUCH im Juli 2005 ist unser Hauptziel, zufriedenen Kunden so schnell und so preisgünstig wie möglich ihren Bücherwunsch zu erfüllen. Unsere Firma beschäftigt 16 Mitarbeiter, die nur ein Ziel kennen: den Kunden und seine Wünsche! Auf über 3700 m2 Fläche haben wir über 100.000 Bücher, Modernes Antiquariat und Spiele auf Lager.
Specialty
Kinderbücher & Kinderhör Casetten, German Books, Software, Natur & Tiere, Ratgeber, Sachbücher, Englische Bücher, Medizin & Gesundheit, Universität & StudiumSeller's business information
AHA-BUCH GmbH
Garlebsen 48
Einbeck, Germany 37574
Terms of sale
General Terms and Conditions and Customer Information / Privacy Policy
I. General Terms and Conditions
§ 1 Basic provisions
(1) The following terms and conditions apply to all contracts that you conclude with us as a provider (AHA-BUCH GmbH) via the Internet platforms AbeBooks and/or ZVAB. Unless otherwise agreed, the inclusion of any of your own terms and conditions used by you will be objected to
(2) A consumer within the meaning of the following regulations is any natural person who concludes a legal transaction for purposes that can predominantly be attributed neither to their commercial nor their independent professional activity. An entrepreneur is any natural or legal person or a partnership with legal capacity who, when concluding a legal transaction, acts in the exercise of his independent professional or commercial activity.
§ 2 Conclusion of the contract
(1) The object of the contract is the sale of goods.
(2) If an article is listed by us at AbeBooks or ZVAB, the activation of the offer page at AbeBooks or ZVAB constitutes the binding offer to conclude a contract under the conditions contained in the article page.
(3) The contract is concluded via the online shopping cart system as follows:
The goods intended for purchase are stored in the "shopping cart". Via the corresponding button in the navigation bar you can call up the "shopping cart" and make changes there at any time.
After calling up the "Checkout" page and entering the personal data as well as the payment and shipping conditions, all order data will be displayed again on the order overview page.
Before sending the order, you have the option of checking all information again, changing it (also via the "back" function of the Internet browser) or cancelling the purchase.
By submitting the order via the "Buy now" button, you declare the acceptance of the offer in a legally binding manner, whereby the contract is concluded.
(4) The processing of the order and transmission of all information required in connection with the conclusion of the contract is partly automated by e-mail. You must therefore ensure that the e-mail address you have stored with us is correct, that the receipt of the e-mails is technically ensured and, in particular, that spam filters do not prevent it.
§ 3 Right of retention, retention of title
(1) You can only exercise a right of retention if it concerns claims from the same contractual relationship.
(2) The goods remain our property until full payment of the purchase price.
§ 4 Warranty
(1) The statutory warranty rights exist.
(2) In the case of used goods, the warranty period is one year from delivery of the item, deviating from the statutory regulation. The shortening of the deadline does not apply:
- culpably caused damages attributable to us from injury to life, limb or health and in the case of other damages caused intentionally or through gross negligence;
- insofar as we have fraudulently concealed the defect or have assumed a guarantee for the quality of the item.
(3) As a consumer, you are requested to check the item immediately upon delivery for completeness, obvious defects and transport damage and to inform us and the freight forwarder of any complaints as soon as possible. If you do not comply with this, this will have no effect on your statutory warranty claims.
§ 5 Choice of law, place of performance, place of jurisdiction
(1) German law shall apply. In the case of consumers, this choice of law shall only apply insofar as this does not withdraw the protection afforded by mandatory provisions of the law of the state of the consumer's habitual residence (principle of favourability).
(2) The place of performance for all services arising from the existing business relationships with us as well as the place of jurisdiction is our registered office, insofar as you are not a consumer, but a merchant, a legal entity under public law or a special fund under public law. The same applies if you do not have a general place of jurisdiction in Germany or the EU or if the domicile or habitual residence is not known at the time the action is brought. The right to appeal to the court at another statutory place of jurisdiction remains unaffected by this.
(3) The provisions of the UN Convention on Contracts for the International Sale of Goods shall expressly not apply.
II. Customer Information
- Identity of the Seller
AHA-BUCH GmbH
Garlebsen 48
D-37574 Einbeck
Germany
Telephone: 055639996039
E-mail: abebooks@aha-buch.de.
Alternative dispute resolution:
The European Commission provides a platform for out-of-court online dispute resolution (ODR platform), which can be accessed under https://ec.europa.eu/odr.
- Information on the conclusion of the contract
The technical steps for the conclusion of the contract, the conclusion of the contract itself and the correction options are carried out in accordance with the provisions "Conclusion of the contract" of our General Terms and Conditions (Part I.).
- Contract language, contract text storage
3.1. The contract language is german.
3.2. The complete text of the contract will not be stored by us. Before sending the order, the contract data can be printed out or electronically saved via the print function of the browser. After receipt of the order by us, the order data, the legally prescribed information for distance contracts and the General Terms and Conditions will be sent to you again by e-mail.
- Essential characteristics of the goods or services
The essential characteristics of the goods and/or services can be found in the respective offer.
- Prices and terms of payment
5.1. The prices stated in the respective offers as well as the shipping costs represent total prices. They include all price components including all applicable taxes.
5.2. The shipping costs incurred are not included in the purchase price. They can be called up via a correspondingly designated button on our website or in the respective offer, are shown separately in the course of the ordering process and are to be borne by you in addition, unless free shipping has been promised.
5.3. If the delivery is made to countries outside the European Union, we may incur additional costs for which we are not responsible, such as.B customs duties, taxes or money transfer fees (transfer or exchange rate fees of the credit institutions), which are to be borne by you. Any costs incurred for the transfer of money shall also be borne by you in cases where the delivery is made to an EU member state, but the payment was initiated outside the European Union.
5.4. The payment methods available to you are indicated under a corresponding button on our website or in the respective offer.
5.5. Unless otherwise stated for the individual payment methods, the payment claims from the concluded contract are due for payment immediately.
- Terms of delivery
6.1. The terms of delivery, the delivery date and, if applicable, existing delivery restrictions can be found under a correspondingly designated button on our website or in the respective offer.
Insofar as no other deadline is specified in the respective offer or under the correspondingly designated button, the delivery of the goods will take place within 3-5 days after conclusion of the contract (in the case of agreed advance payment, however, only after the time of your payment instruction).
6.2. Insofar as you are a consumer, it is regulated by law that the risk of accidental loss and accidental deterioration of the sold item during dispatch shall only pass to you upon handover of the goods, regardless of whether the shipment is insured or uninsured. This does not apply if you have independently commissioned a transport company not named by the entrepreneur or a person otherwise designated to carry out the shipment.
- Statutory liability for defects
Liability for defects is governed by the "Warranty" provision in our General Terms and Conditions (Part I).
last update: 01/06/2022
Privacy policy
Unless otherwise stated below, the provision of your personal data is neither required by law or contract, nor is it necessary for the conclusion of a contract. You are not obliged to provide the data. Failure to provide this will have no consequences. This only applies if no other information is provided in the subsequent processing operations.
Collection, processing and disclosure of personal data when placing orders
When ordering, we collect and process your personal data only to the extent necessary to fulfil and process your order and to process your enquiries. The provision of the data is necessary for the conclusion of the contract. Failure to provide this provision means that no contract can be concluded. The processing takes place on the basis of Art. 6 para. 1 lit.b GDPR and is necessary for the performance of a contract with you.
Your data will be passed on, for example, to the shipping companies and dropshipping providers selected by you, payment service providers, service providers for order processing and IT service providers.
In all cases, we strictly observe the legal requirements. The scope of data transmission is limited to a minimum.
Duration of storage
After completion of the contract, the data will first be stored for the duration of the warranty period, then taking into account legal, in particular tax and commercial retention periods and then deleted after expiry of the period, unless you have consented to further processing and use.
Rights of the data subject
If the legal requirements are met, you have the following rights under Articles 15 to 20 GDPR: Right to information, to correction, to erasure, to restriction of processing, to data portability.
In addition, pursuant to Article 21 (1) GDPR, you have the right to object to processing based on Article 6 (1) f GDPR and to processing for direct marketing purposes.
Contact us on request. The contact details can be found in our imprint.
Right to lodge a complaint with the supervisory authority
In accordance with Article 77 GDPR, you have the right to complain to the supervisory authority if you believe that the processing of your personal data is not lawful.
Right to object
If the personal data processing listed here is based on our legitimate interest pursuant to Art. 6 para. 1 lit. f GDPR, you have the right to object to this processing at any time with effect for the future for reasons arising from your particular situation.
Shipping terms
We ship your order after we received them
for articles on hand latest 24 hours,
for articles with overnight supply latest 48 hours.
In case we need to order an article from our supplier our dispatch time depends on the reception date of the articles, but the articles will be shipped on the same day.
Our goal is to send the ordered articles in the fastest, but also most efficient and secure way to our customers.