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Nickel-decorated single vacancy phosphorene favourable candidate for hydrogen storage

机译:镍装饰的单空位磷烯有利的储氢候选者

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摘要

This work studies the effect of nickel decoration on the hydrogen adsorption properties of single vacancy (SV) defective phosphorene. First principles simulations of Ni decoration show that the SV defective surfaces relax to a doped-like structure with the Ni atom in the place of the vacant phosphorus atom. The functionalised surface shows excess negative charge on neighbouring P atoms, making it suitable for sensing purposes. Additionally, the chemical activity of Ni is reduced due to strong bond formation with phosphorus. Both Nidecorated SV phosphorene systems have H2 adsorption energies more than 3 times than that of defective phosphorene, with values between -0.594 eV and -0.6 eV. The adsorption mechanism of H2 is a two-fold process involving a small charge transfer from the surface P atoms and weak dipole-dipole interactions between the H2 molecule and the Ni atom, as the reduced chemical activity of Ni prevents bond formation with H2. The results demonstrate Ni-decorated SV Phosphorene as a promising candidate for Hydrogen storage and gas sensing applications. Further, decoration on defective phosphorene surfaces can be regarded as a method to control the chemical activity of transition metals for use in applications such as catalysis. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:这项工作研究了镍装饰对单空位(SV)缺陷磷烯的氢吸附性能的影响。第一原理模拟Ni装饰,表明,SV有缺陷的表面放松到掺杂的掺杂结构,其中Ni原子代替空气磷原子。官能化表面在相邻的P原子上显示出过量的负电荷,使其适合于传感目的。另外,由于磷的强键形成,Ni的化学活性降低。 NidoCorated的SV磷烯系统均具有H2吸附能量超过3倍的缺陷磷烯,值到-0.594 eV和-0.6eV。 H2的吸附机理是涉及从表面p原子的小电荷转移的两倍,即H 2分子和Ni原子之间的弱偶极子 - 偶极相互作用,因为Ni的减少的化学活性可防止键形成H 2。结果证明了Ni装饰的SV磷烯作为储氢和气体传感应用的有希望的候选者。此外,在缺陷的磷烯表面上的装饰可以被认为是控制过渡金属化学活性的方法,以用于催化等应用。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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