过电位
材料科学
塔菲尔方程
磷化物
MXenes公司
催化作用
碳化物
氧化物
吉布斯自由能
兴奋剂
钒
氢
无机化学
化学工程
物理化学
纳米技术
金属
化学
电化学
热力学
有机化学
冶金
电极
工程类
光电子学
物理
作者
Yeoheung Yoon,Anand P. Tiwari,Min Choi,Travis G. Novak,Wooseok Song,Hyunju Chang,Taehyoung Zyung,Sun Sook Lee,Seokwoo Jeon,Ki‐Seok An
标识
DOI:10.1002/adfm.201903443
摘要
Abstract The insufficient strategies to improve electronic transport, the poor intrinsic chemical activities, and limited active site densities are all factors inhibiting MXenes from their electrocatalytic applications in terms of hydrogen production. Herein, these limitations are overcome by tunable interfacial chemical doping with a nonmetallic electron donor, i.e., phosphorization through simple heat‐treatment with triphenyl phosphine (TPP) as a phosphorous source in 2D vanadium carbide MXene. Through this process, substitution, and/or doping of phosphorous occurs at the basal plane with controllable chemical compositions (3.83–4.84 at%). Density functional theory (DFT) calculations demonstrate that the PC bonding shows the lowest surface formation energy (Δ G Surf ) of 0.027 eV Å −2 and Gibbs free energy (Δ G H ) of –0.02 eV, whereas others such as P‐oxide and PV (phosphide) show highly positive Δ G H . The P3–V 2 CT x treated at 500 °C shows the highest concentration of PC bonds, and exhibits the lowest onset overpotential of –28 mV, Tafel slope of 74 mV dec −1 , and the smallest overpotential of ‐163 mV at 10 mA cm −2 in 0.5 m H 2 SO 4 . The first strategy for electrocatalytically accelerating hydrogen evolution activity of V 2 CT x MXene by simple interfacial doping will open the possibility of manipulating the catalytic performance of various MXenes.
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