TY - JOUR
T1 - Enhancing Zn Anode Reversibility via Solvation Structure Reconstruction by a Trimethyl Phosphate Additive
AU - Tu, Huan
AU - Li, Xiaogang
AU - Zhou, Yanhui
AU - Wang, Zongnan
AU - Wu, Rui
AU - Zhou, Hu
AU - Meng, Chunfeng
AU - Xue, Yutao
AU - Khan, Iltaf
AU - Yuan, Aihua
N1 - Publisher Copyright:
© 2024 American Chemical Society
PY - 2024/5/27
Y1 - 2024/5/27
N2 - Aqueous zinc-metal batteries are regarded as the most promising energy conversion and storage devices in the near future because of high volume energy density, low cost, and extreme safety. However, the practical industrialization of zinc-metal batteries is still facing the challenges of poor Zn anode reversibility, such as Zn dendrite propagation, interface corrosion, and hydrogen evolution reaction. Here, we report an optimized Zn2+ solvation structure composite electrolyte modified by trimethyl phosphate (TMP) additive, which can suppress the rough growth of Zn dendrites, the formation of H2, the corrosion of zinc, and the formation of passivation layer. Because TMP has a higher Gutmann donor number than H2O, the higher electron cloud density of O atoms in TMP enhances the strength of hydrogen bonds with H2O. Resultantly, the coordination environment of Zn2+ with H2O is broken instead of reconstructed Zn2+ solvation structure with moderate TMP additive. The electrochemical reversibility of the Zn anode is enhanced in the optimized electrolyte with TMP. Consequently, the cycling stability of Zn plating/stripping is promoted by 15% TMP modified electrolyte with high CE of 99.22% at 1 mA cm-2, stably cycled for 850 cycles compared with short-term lifespan less than 200 cycles in the blank electrolyte. The Zn||Zn symmetrical cells can sustain dendrite-free for more than 3000 h with overpotentials of 0.1 V. In addition, the Zn||V2O5 full cell can contribute an unexceptionable long-term cycling stability for over 1000 cycles even at 1 A g-1 with the reversible capacity retention of 66 mA h g-1. This work proposes a facile strategy to regulate the metal-ion solvation structure in aqueous metal batteries.
AB - Aqueous zinc-metal batteries are regarded as the most promising energy conversion and storage devices in the near future because of high volume energy density, low cost, and extreme safety. However, the practical industrialization of zinc-metal batteries is still facing the challenges of poor Zn anode reversibility, such as Zn dendrite propagation, interface corrosion, and hydrogen evolution reaction. Here, we report an optimized Zn2+ solvation structure composite electrolyte modified by trimethyl phosphate (TMP) additive, which can suppress the rough growth of Zn dendrites, the formation of H2, the corrosion of zinc, and the formation of passivation layer. Because TMP has a higher Gutmann donor number than H2O, the higher electron cloud density of O atoms in TMP enhances the strength of hydrogen bonds with H2O. Resultantly, the coordination environment of Zn2+ with H2O is broken instead of reconstructed Zn2+ solvation structure with moderate TMP additive. The electrochemical reversibility of the Zn anode is enhanced in the optimized electrolyte with TMP. Consequently, the cycling stability of Zn plating/stripping is promoted by 15% TMP modified electrolyte with high CE of 99.22% at 1 mA cm-2, stably cycled for 850 cycles compared with short-term lifespan less than 200 cycles in the blank electrolyte. The Zn||Zn symmetrical cells can sustain dendrite-free for more than 3000 h with overpotentials of 0.1 V. In addition, the Zn||V2O5 full cell can contribute an unexceptionable long-term cycling stability for over 1000 cycles even at 1 A g-1 with the reversible capacity retention of 66 mA h g-1. This work proposes a facile strategy to regulate the metal-ion solvation structure in aqueous metal batteries.
KW - Zn solvation structure optimization
KW - dendrite depression
KW - interface reconstruction
KW - reversibility improvement
KW - trimethyl phosphate additive
UR - https://www.scopus.com/pages/publications/85193547325
U2 - 10.1021/acsaem.4c00244
DO - 10.1021/acsaem.4c00244
M3 - 文章
AN - SCOPUS:85193547325
SN - 2574-0962
VL - 7
SP - 4385
EP - 4393
JO - ACS Applied Energy Materials
JF - ACS Applied Energy Materials
IS - 10
ER -