Journal of
Mechanical Engineering Research

  • Abbreviation: J. Mech. Eng. Res.
  • Language: English
  • ISSN: 2141-2383
  • DOI: 10.5897/JMER
  • Start Year: 2009
  • Published Articles: 119

Full Length Research Paper

Development of a mathematical model to study the impact of state of charge dependent exchange current density on the generated voltage hysteresis of silicon anode-based lithium half cells

Al-Mustasin Abir Hossain
  • Al-Mustasin Abir Hossain
  • Department of Mechanical Engineering, School of Engineering and Computer Science (ENCS), Washington State University, Vancouver, WA, United States.
  • Google Scholar


  •  Received: 11 February 2021
  •  Accepted: 27 May 2021
  •  Published: 30 June 2021

References

Ashuri M, He Q, Shaw L (2016). Silicon as a potential anode material for Li-ion batteries: where size, geometry and structure matter. Nanoscale 8(1):74-103.
Crossref

 

Baker D, Verbrugge M, Xiao X (2017). An approach to characterize and clarify hysteresis phenomena of lithium-silicon electrodes, Journal of Applied Physics 122(16):165102.
Crossref

 

Cheng YT, Verbrugge MW (2008), The influence of surface mechanics on diffusion induced stresses within spherical nanoparticles, Journal of Applied Physics 104(8):083521.
Crossref

 

Di Leo C, Rejovitzky E, Anand L (2015). Diffusion-deformation theory for amorphous silicon anodes: The role of plastic deformation on electrochemical performance, International Journal of Solids and Structures 67:283-296.
Crossref

 

Hossain A, Masud N, Yasin M, Ali A (2020a). Analysis of the performance of microbial fuel cell as a potential energy storage device, International Exchange, and Innovation Conference on Engineering and Sciences (IEICES) 6 (2020) At: Kyushu University, Fukuoka City, Japan 6:149-155.
Crossref

 

Hossain AA (2020). Development of a physics-based mathematical model of microparticle silicon-based lithium half cells, Masters, Washington State University-Vancouver.

 

Hossain AA, Cha Y, Song M, Kim SU (2020b). Side reaction correction and non-linear exchange current density for mathematical modeling of silicon anode-based lithium-ion batteries.

 

Hossain AA, Kim SU (2020). Development of a physics-based mathematical model to analyze the limitations of microparticle silicon-based lithium half cells IMECE Technical Presentation.

 

Jin C, Li H, Song Y, Lu B, Soh A, Zhang J (2019). On stress-induced voltage hysteresis in lithium-ion batteries: Impacts of surface effects and inter-particle compression. Science China Technological Sciences 62:1357-1364.
Crossref

 

Kim SU, Albertus P, Cook D, Monroe C, Christensen J (2014). Thermoelectrochemical simulations of performance and abuse in 50-Ah automotive cells. Journal of Power Sources 268:625-633.
Crossref

 

Li J, Dudney N, Xiao X, Cheng Y, Liang C, Verbrugge M (2014). Asymmetric rate behavior of Si anodes for lithium-ion batteries: ultrafast delithiation versus sluggish lithiation at high current densities, Advanced Energy Materials 5(6):1401627.
Crossref

 

Li J, Xiao X, Yang F, Verbrugge MW, Cheng YT (2012). Potentiostatic intermittent titration technique for electrodes governed by diffusion and interfacial reaction. The Journal of Physical Chemistry C 116(1):1472-1478.
Crossref

 

Liang B, Liu Y, Xu Y (2014). Silicon-based materials as high-capacity anodes for next generation lithium-ion batteries. Journal of Power Sources 267:469-490.
Crossref

 

Lu B, Song Y, Zhang Q, Pan J, Cheng Y, Zhang J (2016). Voltage hysteresis of lithium-ion batteries caused by mechanical stress. Physical Chemistry Chemical Physics 18(6):4721-4727.
Crossref

 

Pal S, Damle SS, Patel SH, Datta MK, Kumta PN, Maiti S (2014). Modeling the delamination of amorphous-silicon thin film anode for lithium-ion battery. Journal of Power Sources 246:149-159.
Crossref

 

Pharr M, Suo Z, Vlassak J (2013). Measurements of the fracture energy of lithiated silicon electrodes of li-ion batteries, Nano Letters 13(11):5570-5577.
Crossref

 

Sethuraman V, Srinivasan V, Newman J (2012). Analysis of electrochemical lithiation and delithiation kinetics in silicon, Journal of the Electrochemical Society 160(2):A394-A403.
Crossref

 

Sikha G, De S, Gordon J (2014). Mathematical model for silicon electrode - Part I. 2-d model, Journal of Power Sources. 262:514-523.
Crossref

 

Song Y, Soh A, Zhang J (2016). On stress-induced voltage hysteresis in lithium ion batteries: impacts of material property, charge rate and particle size. Journal of Materials Science 51(21):9902-9911.
Crossref

 

Wu H, Cui Y (2012). Designing nanostructured Si anodes for high energy lithium-ion batteries. Nano Today 7(5):414-429.
Crossref

 

Yang H, Fan F, Liang W, Guo X, Zhu T, Zhang S (2014). A chemo-mechanical model of lithiation in silicon, Journal of the Mechanics and Physics of Solids 70:349-361.
Crossref

 

Zhang W (2011). A review of the electrochemical performance of alloy anodes for lithium-ion batteries. Journal of Power Sources 196(1):13-24.
Crossref