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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >How to Chemically Tailor Metal-Porphyrin-Like Active Sites on Carbon Nanotubes and Graphene for Minimal Overpotential in the Electrochemical Oxygen Evolution and Oxygen Reduction Reactions
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How to Chemically Tailor Metal-Porphyrin-Like Active Sites on Carbon Nanotubes and Graphene for Minimal Overpotential in the Electrochemical Oxygen Evolution and Oxygen Reduction Reactions

机译:如何化学定制碳纳米管和石墨烯上的类似于金属卟啉的活性位,以最大程度地减少电化学氧释放和氧还原反应中的超电势

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Density functional theory calculations are used to study the energetics of the electrochemical oxygen evolution reaction (OER) of water and the reverse oxygen reduction reaction (ORR) on metal-porphyrin-like centers incorporated into graphene layers or single-walled carbon nanotubes (SWCNTs). The objective is to explore the reductions in computational thermodynamic overpotential that can be achieved relative to catalysis on metal oxide surfaces (OER) or platinum (ORR) by varying the metal center and axial ligand. This permits a degree of simultaneous control over the free energy gap between the lowest energy OH and highest energy OOH intermediates, and the position of the oxo (O) intermediate in this gap. Optimal choice of metal toward the right of the first transition series largely controls the gap. Given a suitable metal such as Fe, the overpotential for OER can be tuned over a range greater than 0.35 V by choice of the axial ligand. For OER occurring within the SWCNTs, a minimum predicted overpotential of 0.35 V is found, very close to the gap-imposed limit of 0.30 V for this system. Similarly, the overpotential of ORR can be tuned over a range more than 0.30 V by selection of the axial ligand. While the calculations necessarily have limited accuracy, the principles should provide a transferable path toward overpotential optimization for the OER and ORR.
机译:密度泛函理论计算用于研究水的电化学氧放出反应(OER)和在掺入石墨烯层或单壁碳纳米管(SWCNTs)的金属卟啉样中心上的逆向氧还原反应(ORR)的能量。目的是探索通过改变金属中心和轴向配体,相对于在金属氧化物表面(OER)或铂(ORR)上进行催化可实现的计算热力学过电势的降低。这允许同时控制最低能量的OH和最高能量的OOH中间物之间的自由能间隙以及该间隙中含氧(O)中间物的位置。在第一个过渡系列的右侧,金属的最佳选择在很大程度上控制了间隙。给定合适的金属(例如Fe),可以通过选择轴向配体在大于0.35 V的范围内调节OER的过电势。对于SWCNT中发生的OER,发现最小预测超电势为0.35 V,非常接近此系统的间隙施加极限0.30V。同样,可以通过选择轴向配体在超过0.30 V的范围内调整ORR的过电势。尽管计算的准确性必然受到限制,但是这些原理应该为OER和ORR的超电势优化提供一条可转移的路径。

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