Literature DB >> 28303437

Molecular dynamics simulations of the first charge of a Li-ion-Si-anode nanobattery.

Diego E Galvez-Aranda1, Victor Ponce1, Jorge M Seminario2,3,4.   

Abstract

Rechargeable lithium-ion batteries are the most popular devices for energy storage but still a lot of research needs to be done to improve their cycling and storage capacity. Silicon has been proposed as an anode material because of its large theoretical capacity of ∼3600 mAh/g. Therefore, focus is needed on the lithiation process of silicon anodes where it is known that the anode increases its volume more than 300%, producing cracking and other damages. We performed molecular dynamics atomistic simulations to study the swelling, alloying, and amorphization of a silicon nanocrystal anode in a full nanobattery model during the first charging cycle. A dissolved salt of lithium hexafluorophosphate in ethylene carbonate was chosen as the electrolyte solution and lithium cobalt oxide as cathode. External electric fields are applied to emulate the charging, causing the migration of the Li-ions from the cathode to the anode, by drifting through the electrolyte solution, thus converting pristine Si gradually into Li14Si5 when fully lithiated. When the electric field is applied to the nanobattery, the temperature never exceeds 360 K due to a temperature control imposed resembling a cooling mechanism. The volume of the anode increases with the amorphization of the silicon as the external field is applied by creating a layer of LiSi alloy between the electrolyte and the silicon nanocrystal and then, at the arrival of more Li-ions changing to an alloy, where the drift velocity of Li-ions is greater than the velocity in the initial nanocrystal structure. Charge neutrality is maintained by concerted complementary reduction-oxidation reactions at the anode and cathode, respectively. In addition, the nanobattery model developed here can be used to study charge mobility, current density, conductance and resistivity, among several other properties of several candidate materials for rechargeable batteries and constitutes the initial point for further studies on the formation of the solid electrolyte interphase in the anode. Graphical Abstract Nanobattery: LiCoO2 cathode, electrolyte solution of 1M Li+PF6- in ethylene carbonate, and Si crystal anode, which changes its volume due to lithiation during the first charge.

Entities:  

Keywords:  Battery; Li-ion; MD; Molecular dynamics; Nanobattery; Silicon anode

Year:  2017        PMID: 28303437     DOI: 10.1007/s00894-017-3283-2

Source DB:  PubMed          Journal:  J Mol Model        ISSN: 0948-5023            Impact factor:   1.810


  10 in total

1.  Silicon nanowire fabric as a lithium ion battery electrode material.

Authors:  Aaron M Chockla; Justin T Harris; Vahid A Akhavan; Timothy D Bogart; Vincent C Holmberg; Chet Steinhagen; C Buddie Mullins; Keith J Stevenson; Brian A Korgel
Journal:  J Am Chem Soc       Date:  2011-12-01       Impact factor: 15.419

2.  Universal equation of state.

Authors: 
Journal:  Phys Rev B Condens Matter       Date:  1988-07-01

3.  Stable cycling of double-walled silicon nanotube battery anodes through solid-electrolyte interphase control.

Authors:  Hui Wu; Gerentt Chan; Jang Wook Choi; Ill Ryu; Yan Yao; Matthew T McDowell; Seok Woo Lee; Ariel Jackson; Yuan Yang; Liangbing Hu; Yi Cui
Journal:  Nat Nanotechnol       Date:  2012-03-25       Impact factor: 39.213

4.  First principles study of lithium insertion in bulk silicon.

Authors:  Wenhui Wan; Qianfan Zhang; Yi Cui; Enge Wang
Journal:  J Phys Condens Matter       Date:  2010-09-23       Impact factor: 2.333

5.  Structure and Reactivity of Alucone-Coated Films on Si and Li(x)Si(y) Surfaces.

Authors:  Yuguang Ma; Julibeth M Martinez de la Hoz; Ivette Angarita; Jose M Berrio-Sanchez; Laura Benitez; Jorge M Seminario; Seoung-Bum Son; Se-Hee Lee; Steven M George; Chunmei Ban; Perla B Balbuena
Journal:  ACS Appl Mater Interfaces       Date:  2015-05-27       Impact factor: 9.229

6.  Two-phase electrochemical lithiation in amorphous silicon.

Authors:  Jiang Wei Wang; Yu He; Feifei Fan; Xiao Hua Liu; Shuman Xia; Yang Liu; C Thomas Harris; Hong Li; Jian Yu Huang; Scott X Mao; Ting Zhu
Journal:  Nano Lett       Date:  2013-01-17       Impact factor: 11.189

7.  In situ TEM of two-phase lithiation of amorphous silicon nanospheres.

Authors:  Matthew T McDowell; Seok Woo Lee; Justin T Harris; Brian A Korgel; Chongmin Wang; William D Nix; Yi Cui
Journal:  Nano Lett       Date:  2013-01-17       Impact factor: 11.189

8.  Investigation of Lithium Insertion Mechanisms of a Thin-Film Si Electrode by Coupling Time-of-Flight Secondary-Ion Mass Spectrometry, X-ray Photoelectron Spectroscopy, and Focused-Ion-Beam/SEM.

Authors:  Arnaud Bordes; Eric De Vito; Cédric Haon; Christophe Secouard; Alexandre Montani; Philippe Marcus
Journal:  ACS Appl Mater Interfaces       Date:  2015-12-14       Impact factor: 9.229

9.  In situ atomic-scale imaging of electrochemical lithiation in silicon.

Authors:  Xiao Hua Liu; Jiang Wei Wang; Shan Huang; Feifei Fan; Xu Huang; Yang Liu; Sergiy Krylyuk; Jinkyoung Yoo; Shadi A Dayeh; Albert V Davydov; Scott X Mao; S Tom Picraux; Sulin Zhang; Ju Li; Ting Zhu; Jian Yu Huang
Journal:  Nat Nanotechnol       Date:  2012-10-07       Impact factor: 39.213

10.  High-performance lithium battery anodes using silicon nanowires.

Authors:  Candace K Chan; Hailin Peng; Gao Liu; Kevin McIlwrath; Xiao Feng Zhang; Robert A Huggins; Yi Cui
Journal:  Nat Nanotechnol       Date:  2007-12-16       Impact factor: 39.213

  10 in total
  6 in total

1.  DFT study of nano zinc/copper voltaic cells.

Authors:  J Tillman Austin; Jorge M Seminario
Journal:  J Mol Model       Date:  2018-03-23       Impact factor: 1.810

2.  Solid electrolyte interphase formation between the Li0.29La0.57TiO3 solid-state electrolyte and a Li-metal anode: an ab initio molecular dynamics study.

Authors:  Diego E Galvez-Aranda; Jorge M Seminario
Journal:  RSC Adv       Date:  2020-03-02       Impact factor: 4.036

3.  Dendrite formation in silicon anodes of lithium-ion batteries.

Authors:  Luis A Selis; Jorge M Seminario
Journal:  RSC Adv       Date:  2018-01-29       Impact factor: 4.036

4.  Investigating the effects of vacancies on self-diffusion in silicon clusters using classical molecular dynamics.

Authors:  Swarn Jha; Victor Ponce; Jorge M Seminario
Journal:  J Mol Model       Date:  2018-09-21       Impact factor: 1.810

5.  Dendrite formation in Li-metal anodes: an atomistic molecular dynamics study.

Authors:  Luis A Selis; Jorge M Seminario
Journal:  RSC Adv       Date:  2019-09-04       Impact factor: 4.036

6.  Feasibility study of Mg storage in a bilayer silicene anode via application of an external electric field.

Authors:  Sumaiyatul Ahsan; Abrar Rauf; M F N Taufique; Hasan Al Jame; Saugata Sarker; Sadiq Shahriyar Nishat; Md Tohidul Islam; Azmain Faek Islam; Md Rafsun Jani; Md Shafiqul Islam; Kazi Md Shorowordi; Saquib Ahmed
Journal:  RSC Adv       Date:  2022-07-21       Impact factor: 4.036

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.