Literature DB >> 29372891

Lithium effects on the mechanical and electronic properties of germanium nanowires.

A González-Macías1, F Salazar, A Miranda, A Trejo-Baños, L A Pérez, E Carvajal, M Cruz-Irisson.   

Abstract

Semiconductor nanowire arrays promise rapid development of a new generation of lithium (Li) batteries because they can store more Li atoms than conventional crystals due to their large surface areas. During the charge-discharge process, the electrodes experience internal stresses that fatigue the material and limit the useful life of the battery. The theoretical study of electronic and mechanical properties of lithiated nanowire arrays allows the designing of electrode materials that could improve battery performance. In this work, we present a density functional theory study of the electronic band structure, formation energy, binding energy, and Young's modulus (Y) of hydrogen passivated germanium nanowires (H-GeNWs) grown along the [111] and [001] crystallographic directions with surface and interstitial Li atoms. The results show that the germanium nanowires (GeNWs) with surface Li atoms maintain their semiconducting behavior but their energy gap size decreases when the Li concentration grows. In contrast, the GeNWs can have semiconductor or metallic behavior depending on the concentration of the interstitial Li atoms. On the other hand, Y is an indicator of the structural changes that GeNWs suffer due to the concentration of Li atoms. For surface Li atoms, Y stays almost constant, whereas for interstitial Li atoms, the Y values indicate important structural changes in the GeNWs.

Entities:  

Year:  2018        PMID: 29372891     DOI: 10.1088/1361-6528/aaaad4

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  1 in total

1.  Interstitial sodium and lithium doping effects on the electronic and mechanical properties of silicon nanowires: a DFT study.

Authors:  F Salazar; A Trejo-Baños; A Miranda; L A Pérez; M Cruz-Irisson
Journal:  J Mol Model       Date:  2019-11-09       Impact factor: 1.810

  1 in total

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