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Titlebook: Intercalation in Layered Materials; M. S. Dresselhaus Book 1986 Springer Science+Business Media New York 1986 material.materials.materials

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Band Structure Changes upon Lithium Intercalation of 1T- and 4Hb-TaS2ortance is the lowest-lying part of the conduction band which is known to contain a considerable d. 2 character: its energy position seems to be associated with its electronic filling as well as with the c/a ratio of the compound in question. Experimental evidence for such dependence is hereby given
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Reflectivity of Cr1/3TaS2 and its Kramers-Kronig Analysis properties such as charge density waves and other quasi-two-dimensional behavour. Rich in polytypism, it is also very interesting following intercalation. Varieties of chemical species and substances have been intercalated (see e.g. SUBBA RAO et al [1]). Apart from the potential industrial applicat
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The LMTO-ASA Method and Band Structures of Layer-Structure Transition Metal Chalcogenidesy and a number of approximate methods have been proposed. Band structure methods used in the early studies up to 1979, of layer compounds have been reviewed by Fong [1]. In the case of compounds there is a greater need to carry out selfconsistent (SC) calculations since there would be certain charge
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Alkali Metal Intercalation-Deintercalation Reactions in 2D Oxidesen reported on A.MO. layer oxides (A : alkali ion, M : transition element x < 1).. Stoichiometric AMO. oxides have been mainly studied from a crystal chemistry point of view.. Although A.MO. layer oxides show close likeness with intercalated TMDC they cannot exist in the unintercalated form. This pr
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Free-Exciton Photoluminescence: A Probe for Studying the Intercalation Process in the III–VI Layer Cfor intercalation applications, mainly as electrodes in solid state batteries [1]. Each layer consists of four two-dimensional sheets of like atoms in the sequence X-M-M-X with mainly strong covalent bonding between the sheets, while the complete four fold layers are bound together by weak Van der W
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Synthesis of Graphite Intercalation Compoundsecular layers, termed intercalate layers, between the host layers. In graphite, this reaction takes advantage of the weak (van der Waals) bonds between carbon layers. The intralayer hexagonal organization of the carbon atoms is not affected by intercalation. Typical syntheses of graphite intercalati
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Structural Properties and Phase Transitions of Graphite Intercalation Compoundsfter noted GICs). Because of their intrinsic anisotropy these materials provide very attractive opportunities for studying structural phase transitions as a function of dimensionality. Quite naturally structural studies have taken an important and productive part in the renewed interest of the past
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