TY - JOUR
T1 - Boosting Li-Ion Diffusion Kinetics of Na2Ti6-xMoxO13 via Coherent Dimensional Engineering and Lattice Tailoring
T2 - An Alternative High-Rate Anode
AU - Liu, Fu
AU - Zou, Yiming
AU - Wang, Helin
AU - Wang, Zhiqiao
AU - Zhang, Min
AU - Wu, Weiwei
AU - Du, Dou
AU - Zhao, Wenyu
AU - Zhao, Ting
AU - Liu, Yujie
AU - Yao, Ning
AU - Ma, Yue
N1 - Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/6/28
Y1 - 2022/6/28
N2 - Featured with an exposed active facet, favorable ion diffusion pathway, and tailorable interfacial properties, low-dimensional structures are extensively explored as alternative electroactive materials with game-changing redox properties. Through a stepwise “proton exchange-insertion-exfoliation” procedure, in this article, we develop Na2Ti6-xMoxO13 (NTMO) nanosheets with weakened out-of-plane bonding and in-plane Mo6+ doping of the tunnel structure. Real-time phase tracking of the laminated NTMO structures upon the lithiation/delithiation process suggests mitigated lattice variation; meanwhile, the kinetics simulation shows a mitigated Li-ion diffusion barrier along the [010] orientation. At an industrial-level areal capacity loading (2.5 mAh cm-2), the NTMO electrode maintains robust cycling endurance (91% capacity retention for 2000 cycles) even at 40 C, as well as the high energy/power densities in the as-constructed NTMO||LiFePO4 full cell prototype. The dimensional and lattice modifications presented in this study thus encourage further exploration of the tailored cation diffusion pathway for the construction of fast-charging batteries.
AB - Featured with an exposed active facet, favorable ion diffusion pathway, and tailorable interfacial properties, low-dimensional structures are extensively explored as alternative electroactive materials with game-changing redox properties. Through a stepwise “proton exchange-insertion-exfoliation” procedure, in this article, we develop Na2Ti6-xMoxO13 (NTMO) nanosheets with weakened out-of-plane bonding and in-plane Mo6+ doping of the tunnel structure. Real-time phase tracking of the laminated NTMO structures upon the lithiation/delithiation process suggests mitigated lattice variation; meanwhile, the kinetics simulation shows a mitigated Li-ion diffusion barrier along the [010] orientation. At an industrial-level areal capacity loading (2.5 mAh cm-2), the NTMO electrode maintains robust cycling endurance (91% capacity retention for 2000 cycles) even at 40 C, as well as the high energy/power densities in the as-constructed NTMO||LiFePO4 full cell prototype. The dimensional and lattice modifications presented in this study thus encourage further exploration of the tailored cation diffusion pathway for the construction of fast-charging batteries.
KW - anisotropic diffusion kinetics
KW - dimensional engineering
KW - high power density
KW - mixed-conducting property
KW - operando XRD
KW - tailorable composition
UR - http://www.scopus.com/inward/record.url?scp=85134585388&partnerID=8YFLogxK
U2 - 10.1021/acsnano.2c01200
DO - 10.1021/acsnano.2c01200
M3 - 文章
C2 - 35593703
AN - SCOPUS:85134585388
SN - 1936-0851
VL - 16
SP - 9117
EP - 9129
JO - ACS Nano
JF - ACS Nano
IS - 6
ER -