Vertical nanoarrays with lithiophilic sites suppress the growth of lithium dendrites for ultrastable lithium metal batteries

2021 ◽  
Vol 405 ◽  
pp. 126808
Author(s):  
Danqing Jin ◽  
Kang Hu ◽  
Rui Hou ◽  
Huan Shang ◽  
Xueyou Wang ◽  
...  
2022 ◽  
Vol 521 ◽  
pp. 230921
Author(s):  
Yuncai Chen ◽  
Yidong Jiang ◽  
Shang-Sen Chi ◽  
Haw Jiunn Woo ◽  
Kai Yu ◽  
...  

2019 ◽  
Vol 416 ◽  
pp. 141-147 ◽  
Author(s):  
Guangmei Hou ◽  
Qidi Sun ◽  
Qing Ai ◽  
Xiaohua Ren ◽  
Xiaoyan Xu ◽  
...  

2020 ◽  
Author(s):  
Sang-Gil Woo ◽  
Eun-Kyoung Hwang ◽  
Hee-Kook Kang ◽  
Haeun Lee ◽  
Je-Nam Lee ◽  
...  

Abstract The prospect of increasing the energy density has promoted research on lithium metal batteries. Yet, avoiding the uncontrolled growth of lithium dendrites and the resulting interfacial instability to ensure the practical viability of the given battery technology remains a considerable challenge. Here, we report coating the separator with sulfated zirconia superacid to achieve a high lithium ion transference number of 0.92 and compelling cycle life when a full-cell paired with a LiNi0.82Co0.07Mn0.11O2 cathode was tested in a carbonate electrolyte under practical operating conditions. The exceptionally high transference number is attributed to strengthened binding of the PF6− anion of the lithium salt with the superacid. Furthermore, a trace amount of water bound to the superacid reacts with PF6− to induce a mechanically stable solid-electrolyte-interphase (SEI) layer rich in LixPOyFz. This study demonstrates the beneficial effect of the superacid on emerging post-lithium-ion batteries by immobilizing the anion of the salt as well as modifying the SEI composition.


2020 ◽  
Vol 12 (1) ◽  
Author(s):  
Shanqing Zhang

AbstractElectrolyte engineering is considered as an effective strategy to establish stable solid electrolyte interface (SEI), and thus to suppress the growth of lithium dendrites. In a recent study reported in Advanced Functional Materials by Ma group, discovered that strong coordination force could be founded between 15-Crown-5 ether (15-C-5) and Li+, which facilitates the crown ether (15-C-1) to participate in the solvation structure of Li+ in the electrolyte for the same purpose. Such a novel strategy might impact the design of high-performance and safe lithium metal batteries (LMBs).


2018 ◽  
Vol 9 (1) ◽  
Author(s):  
Peichao Zou ◽  
Yang Wang ◽  
Sum-Wai Chiang ◽  
Xuanyu Wang ◽  
Feiyu Kang ◽  
...  

Author(s):  
Eunho Cha ◽  
Jong Hyuk Yun ◽  
Rubha Ponraj ◽  
Do Kyung Kim

Over the past decades, there has been tremendous progress to overcome the intrinsic issues of lithium metal batteries (LMBs). In particular, studies have shown that utilizing lithiophilic materials for LMBs...


Author(s):  
Jianzong Man ◽  
Wenlong Liu ◽  
Haibang Zhang ◽  
Kun Liu ◽  
Yongfu Cui ◽  
...  

Controlling lithium dendrites growth and alleviating volume expansion of lithium metal anode are two key factors to develop high energy density lithium metal batteries. In this work, the planar Cu...


Author(s):  
Can Liao ◽  
Longfei Han ◽  
Na Wu ◽  
Xiaowei Mu ◽  
Yuan Hu ◽  
...  

Lithium (Li) metal batteries, as the ultimate goal of high energy density storage devices, have been regarded as a suitable candidate for next-generation electrical energy storage. Nevertheless, uncontrolled lithium dendrites...


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