TY - JOUR
T1 - Heteroanionic Halogenated TiBTx MBene Protective Layer With Dual-Functional Zincophilic and Hydrophobic Characteristics for Dendrite-Free Zinc Anode
AU - Shen, Qing
AU - Wang, Jinming
AU - He, Zhouru
AU - Fu, Wangqin
AU - Ang, Edison Huixiang
AU - Wang, Junjie
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - Two-dimensional (2D) hexagonal transition metal borides (h-MBenes), emerging members of 2D materials, demonstrate significant potential as protective layers for metal anodes. However, conventional MBenes synthesized by wet etching have massive oxygen-containing terminations imported during the chemical synthesis process, with zincophobic and hydrophilic, resulting in severe dendrite growth kinetics and compromising electrode performance. In this study, we report a novel hetero-halogen TiBTX (TX = Cl and I) h-MBenes through a halogen-radius-isomerization strategy, enabling precise mixed-halogen functionalization to create an ultrahigh zincophilic and hydrophobic microenvironment. Compared to single -I terminations, the mixed-halogen TiBTX exhibits significantly enhanced zincophilicity with ordered Zn2+ adsorption, attributed to the asymmetry-inductive effect of the larger-radius -I ions. Simultaneously, the -Cl moieties serve as a protective barrier, mitigating water-induced corrosion of the Zn anode in aqueous electrolytes. Notably, the dual-functional TiBTx-31 layer (TiBI0.32Cl0.13) demonstrates exceptional electrochemical performance, achieving a prolonged cycling life exceeding 2000 h an impressive average coulombic efficiency of 99.86%. Furthermore, the TiBTx-31@Zn||NVO full pouch cell maintains 95.3% capacity retention over 100 cycles. This work highlights the innovative halogen-radius-isomerization approach for interfacial engineering by tailoring halogen terminations, offering new insights for the development of high-performance h-MBenes-based energy storage devices.
AB - Two-dimensional (2D) hexagonal transition metal borides (h-MBenes), emerging members of 2D materials, demonstrate significant potential as protective layers for metal anodes. However, conventional MBenes synthesized by wet etching have massive oxygen-containing terminations imported during the chemical synthesis process, with zincophobic and hydrophilic, resulting in severe dendrite growth kinetics and compromising electrode performance. In this study, we report a novel hetero-halogen TiBTX (TX = Cl and I) h-MBenes through a halogen-radius-isomerization strategy, enabling precise mixed-halogen functionalization to create an ultrahigh zincophilic and hydrophobic microenvironment. Compared to single -I terminations, the mixed-halogen TiBTX exhibits significantly enhanced zincophilicity with ordered Zn2+ adsorption, attributed to the asymmetry-inductive effect of the larger-radius -I ions. Simultaneously, the -Cl moieties serve as a protective barrier, mitigating water-induced corrosion of the Zn anode in aqueous electrolytes. Notably, the dual-functional TiBTx-31 layer (TiBI0.32Cl0.13) demonstrates exceptional electrochemical performance, achieving a prolonged cycling life exceeding 2000 h an impressive average coulombic efficiency of 99.86%. Furthermore, the TiBTx-31@Zn||NVO full pouch cell maintains 95.3% capacity retention over 100 cycles. This work highlights the innovative halogen-radius-isomerization approach for interfacial engineering by tailoring halogen terminations, offering new insights for the development of high-performance h-MBenes-based energy storage devices.
KW - h-MBenes
KW - Protective Layer
KW - TiBTx
KW - Zn metal anode
UR - http://www.scopus.com/inward/record.url?scp=105005974213&partnerID=8YFLogxK
U2 - 10.1002/anie.202507504
DO - 10.1002/anie.202507504
M3 - 文章
AN - SCOPUS:105005974213
SN - 1433-7851
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
ER -