Das Bikram Kumar, Sen Dipayan, Chattopadhyay K K
Thin Film and NanoScience Laboratory, Department of Physics, Jadavpur University, Kolkata 700032, India.
Phys Chem Chem Phys. 2016 Jan 28;18(4):2949-58. doi: 10.1039/c5cp05768j.
Dispersive force corrected density functional theory is used to map the oxygen reduction reaction (ORR) kinetics of six kinds of graphyne (Gy) and graphdiyne (Gdy) systems (namely αGy, βGy, γGy, δGy, 6,6,12Gy, RGy and Gdy) with substitutional boron (B) atom doping. To this end, the most favorable sites for B doping of each structures are determined by comparing their formation energies and then the best configuration for di-oxygen (O2) adsorption is computed by analyzing the corresponding adsorption energies. Even though oxygen adsorption is found to be energetically favorable on all of these and all Gys and Gdy are found to distinctly favor the four electron pathways for ORR, a reaction scheme with monotonically exothermic ΔG is observed only for B doped RGy. Further computations performed by varying electrode potential indicated this monotonically exothermic nature of the ΔG of B doped RGy to persist in the range 0-0.22 V and also indicated the first (H(+) + e) transfer step to be the rate limiting step.
采用色散力校正密度泛函理论来描绘六种石墨炔(Gy)和石墨二炔(Gdy)体系(即αGy、βGy、γGy、δGy、6,6,12Gy、RGy和Gdy)在有替代硼(B)原子掺杂情况下的氧还原反应(ORR)动力学。为此,通过比较各结构的形成能来确定每个结构中B掺杂的最有利位点,然后通过分析相应的吸附能来计算双原子氧(O₂)吸附的最佳构型。尽管发现氧吸附在所有这些体系上在能量上都是有利的,并且所有的Gy和Gdy都明显倾向于ORR的四电子途径,但仅在B掺杂的RGy中观察到具有单调放热ΔG的反应方案。通过改变电极电位进行的进一步计算表明,B掺杂的RGy的ΔG的这种单调放热性质在0 - 0.22 V范围内持续存在,并且还表明第一步(H⁺ + e)转移是速率限制步骤。