Diffusion Along Dislocations Mitigates Self-Limiting Na Diffusion in Crystalline Sn

  • Byeon, Young-Woon
  • Ahn, Jae-Pyoung
  • Lee, Jae-Chul
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초록

The diffusion of carrier ions in alloying anodes often develops compressive stresses in front of the propagating interface, suppressing the carrier-ion diffusion and limiting their full penetration into alloying anodes during battery cycles. This phenomenon, termed "self-limiting diffusion (SLD)", reduces the rate performance of batteries and hinders the full usage of anode materials. However, SLD is mitigated in some systems where tensile residual stresses develop at the interface, causing them to manifest significantly improved rate performance and energy capacity. Here, a comparative study of Li-Si and Na-Sn systems to elucidate how the differing diffusion kinetics displayed by the two systems can influence SLD behaviors and the rate performance of batteries is performed. Experiments show that the Na diffusion into soft Sn crystals induces tensile stresses near the interface, promoting the nucleation of high-density dislocations. Thus-formed dislocations facilitate Na diffusion at ultrafast rates by providing pathways for dislocation pipe diffusion and alleviate SLD, making crystalline Sn suitable for fast-charging anode material. The outcomes of this study, while filling the knowledge gaps on the reasons for SLD, offer some guidelines for the appropriate choice of potential anode materials with superior rate performance and energy capacity suitable for future applications.

키워드

diffusion&#8208controlled reactioninterface&#8208controlled reactionpipe diffusionresidual stressself&#8208limiting diffusionIN-SITU CHARACTERIZATIONELECTROCHEMICAL LITHIATIONSILICON NANOWIRESMECHANICAL-PROPERTIESPIPE DIFFUSIONSODIATIONFRACTUREGERMANIUMOXIDATIONORIENTATION
제목
Diffusion Along Dislocations Mitigates Self-Limiting Na Diffusion in Crystalline Sn
저자
Byeon, Young-WoonAhn, Jae-PyoungLee, Jae-Chul
DOI
10.1002/smll.202004868
발행일
2020-12
유형
Article
저널명
Small
16
52