材料科学
纳米棒
异质结
化学工程
电极
碲化物
热液循环
离解(化学)
超级电容器
碳纤维
离子键合
纳米技术
功率密度
碳纳米管
分解水
可逆氢电极
氢
密度泛函理论
成核
吸附
电催化剂
电子转移
光电子学
标准氢电极
化学物理
同步加速器
态密度
过渡金属
带隙
水热合成
作者
Mingjie Yi,Shouyin Lv,Leqian Chu,Song Lei,Lijun Lin,Jianhui Huang,Hao Wang,Juhua Zhang
出处
期刊:Rare Metals
[Springer Science+Business Media]
日期:2026-01-06
摘要
ABSTRACT Low conductivity, slow ion‐diffusion, and limited reactive sites are common problems in electrocatalysts and electrode materials. In this study, a complex NiTe–CoTe heterojunction with abundant Te vacancies embedded in N, P, and F co‐doped hollow carbon nanorods (NiTe 1− x –CoTe 1− x /NPFC) was fabricated via a simple ionic liquid‐assisted hydrothermal method and calcination. NiTe 1− x –CoTe 1− x /NPFC shows excellent activity (80.1 and 108.4 mV overpotentials at 10/100 mA cm −1 ) for the hydrogen evolution reaction in 1.0 M KOH solution. Moreover, NiTe 1− x –CoTe 1− x /NPFC exhibits an excellent energy density of 57.9 Wh kg −1 at an extremely high power density of 15.90 kW kg −1 in a flexible solid‐state supercapacitor, revealing its outstanding performance. Mechanistic insights from synchrotron XANES, in situ spectroscopy, and DFT calculations elucidate the interfacial electron transfer pathways, dynamic water dissociation behavior during HER, reversible phase transition mechanisms during energy storage, and the optimization of OH − /H* adsorption energy. Overall, this study will facilitate the design of telluride heterojunctions with tellurium‐rich vacancies as well as N, P, and F doped carbon composites, which can be applied to other electrode materials and electrocatalysts.
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