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Highly efficient N-2 fixation catalysts: transition-metal carbides M2C (MXenes)

机译:高效的n -固定催化剂:过渡金属碳化物M2C (MXenes)

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The development of highly efficient metal or metal compound electrocatalysts under mild conditions has always been a challenging task for N-2 reduction. Herein, we show that pristine two-dimensional (2D) MXenes are promising N-2 electroreduction catalysts due in part to the availability of multiple active sites per unit area. We systematically explore a series of 3d, 4d and 5d-transition metal M2C (M = Sc, Ti, V, Cr, Mn, Fe, Zr, Nb, Mo, Ta and Hf) MXenes and compute their limiting potentials for the N-2 reduction reaction (NRR). We find that 4d(4)-Mo2C gives rise to the lowest free-energy barrier (Delta G) of 0.46 eV, among the synthesized M2C MXenes as of today. More importantly, we find that two hypothetical MXenes, 3d(5)-Mn2C and 3d(6)-Fe2C, possess even lower Delta G of 0.28 and 0.23 eV, respectively, compared to the state-of-the-art 4d(4)-Mo2C, thereby likely being more efficient NRR catalysts. The N-2 capture strength, a key parameter of the potential-limiting step, is found to be closely related to the d-electron arrangement on the occupied and empty spin-split d-orbitals. Hence, the excellent NRR performance of Mn2C and Fe2C can be attributed to the desirable half-filled 3d(5) or 3d(6) electron arrangements. The adsorption of N-2 on Mn2C results in the donation of 1 sigma electrons to the empty spin-down 3d orbitals of Mn. The donated electrons weaken the N-2 adsorption strength and lower the energy barrier of the potential-limiting step of hydrogenation. The insights obtained from this comprehensive study offer guidance to design new and efficient electrocatalysts for N-2 fixation.
机译:高效的金属或金属的发展在温和条件下复合electrocatalysts一直是一个具有挑战性的任务2减少。二维(2 d) MXenes承诺n - 2由于部分电解还原催化剂单位多个活跃的站点的可用性区域。4 d和5 d-transition金属M2C (M = Sc、钛、V,Cr、Mn、Fe、Zr, Nb穆塔兹和Hf) MXenes and计算其限制势的n - 2还原反应(NRR)。产生自由能最低的障碍(δG) 0.46 eV,合成M2C之一MXenes的今天。两个假设MXenes, 3 d (5) -Mn2C和3 d (6) -Fe2C,拥有更低的δG的0.28分别和0.23电动汽车相比最先进的四维(4)-Mo2C,从而可能更高效的NRR催化剂。力量,的一个关键参数发现潜在限制步骤,密切在d-electron相关安排占领和空spin-split d轨道。优秀的NRR Mn2C和Fe2C的性能可以归因于可取的装吗3 d(5)或三维(6)电子安排。吸附的n - Mn2C导致捐赠1σ电子的空向下的3 dMn的轨道。n -吸附强度和较低的能量障碍的潜在限制步骤加氢。设计新的综合研究提供指导和高效electrocatalysts n -固定。

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