Reviving Lithium-Metal Anodes for Next-Generation High-Energy Batteries

2017 ◽  
Vol 29 (29) ◽  
pp. 1700007 ◽  
Author(s):  
Yanpeng Guo ◽  
Huiqiao Li ◽  
Tianyou Zhai
Author(s):  
Ruichao Lu ◽  
Binbin Zhang ◽  
Yueli Cheng ◽  
Kamran Amin ◽  
Chen Yang ◽  
...  

Three-dimensional (3D) current collectors have shown great potential in realizing practical Li metal anodes for next-generation high-energy battery systems. However, 3D current collectors suffer from a common phenomenon of preferential...


2018 ◽  
Vol 14 ◽  
pp. 376-382 ◽  
Author(s):  
Boyang Liu ◽  
Lei Zhang ◽  
Shaomao Xu ◽  
Dennis W. McOwen ◽  
Yunhui Gong ◽  
...  

ACS Nano ◽  
2019 ◽  
Vol 13 (7) ◽  
pp. 8337-8346 ◽  
Author(s):  
Fei Pei ◽  
Ang Fu ◽  
Weibin Ye ◽  
Jian Peng ◽  
Xiaoliang Fang ◽  
...  

2020 ◽  
Vol 11 (1) ◽  
Author(s):  
Tianyi Wang ◽  
Yanbin Li ◽  
Jinqiang Zhang ◽  
Kang Yan ◽  
Pauline Jaumaux ◽  
...  

Abstract The practical applications of lithium metal anodes in high-energy-density lithium metal batteries have been hindered by their formation and growth of lithium dendrites. Herein, we discover that certain protein could efficiently prevent and eliminate the growth of wispy lithium dendrites, leading to long cycle life and high Coulombic efficiency of lithium metal anodes. We contend that the protein molecules function as a “self-defense” agent, mitigating the formation of lithium embryos, thus mimicking natural, pathological immunization mechanisms. When added into the electrolyte, protein molecules are automatically adsorbed on the surface of lithium metal anodes, particularly on the tips of lithium buds, through spatial conformation and secondary structure transformation from α-helix to β-sheets. This effectively changes the electric field distribution around the tips of lithium buds and results in homogeneous plating and stripping of lithium metal anodes. Furthermore, we develop a slow sustained-release strategy to overcome the limited dispersibility of protein in the ether-based electrolyte and achieve a remarkably enhanced cycling performance of more than 2000 cycles for lithium metal batteries.


Nano Select ◽  
2020 ◽  
Vol 1 (1) ◽  
pp. 94-110 ◽  
Author(s):  
Jun‐Fan Ding ◽  
Rui Xu ◽  
Chong Yan ◽  
Ye Xiao ◽  
Lei Xu ◽  
...  

2020 ◽  
Vol 7 (4) ◽  
pp. 897-904
Author(s):  
Huifeng Zhuang ◽  
Ping Zhao ◽  
Yue Xu

Lithium (Li) metal anodes are considered to be one of the most superior anodes due to their high energy density and lowest electrochemical potential.


2017 ◽  
Vol 114 (42) ◽  
pp. 11069-11074 ◽  
Author(s):  
Chen-Zi Zhao ◽  
Xue-Qiang Zhang ◽  
Xin-Bing Cheng ◽  
Rui Zhang ◽  
Rui Xu ◽  
...  

Lithium metal is strongly regarded as a promising electrode material in next-generation rechargeable batteries due to its extremely high theoretical specific capacity and lowest reduction potential. However, the safety issue and short lifespan induced by uncontrolled dendrite growth have hindered the practical applications of lithium metal anodes. Hence, we propose a flexible anion-immobilized ceramic–polymer composite electrolyte to inhibit lithium dendrites and construct safe batteries. Anions in the composite electrolyte are tethered by a polymer matrix and ceramic fillers, inducing a uniform distribution of space charges and lithium ions that contributes to a dendrite-free lithium deposition. The dissociation of anions and lithium ions also helps to reduce the polymer crystallinity, rendering stable and fast transportation of lithium ions. Ceramic fillers in the electrolyte extend the electrochemically stable window to as wide as 5.5 V and provide a barrier to short circuiting for realizing safe batteries at elevated temperature. The anion-immobilized electrolyte can be applied in all–solid-state batteries and exhibits a small polarization of 15 mV. Cooperated with LiFePO4 and LiNi0.5Co0.2Mn0.3O2 cathodes, the all–solid-state lithium metal batteries render excellent specific capacities of above 150 mAh⋅g−1 and well withstand mechanical bending. These results reveal a promising opportunity for safe and flexible next-generation lithium metal batteries.


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