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纳米棒氧化铌作为全钒氧化还原流电池的高效催化剂。

Nanorod niobium oxide as powerful catalysts for an all vanadium redox flow battery.

机构信息

Pacific Northwest National Laboratory , P.O. Box 999, Richland, Washington 99352, United States.

出版信息

Nano Lett. 2014 Jan 8;14(1):158-65. doi: 10.1021/nl403674a. Epub 2013 Dec 18.

Abstract

A powerful low-cost electrocatalyst, nanorod Nb2O5, is synthesized using the hydrothermal method with monoclinic phases and simultaneously deposited on the surface of a graphite felt (GF) electrode in an all vanadium flow battery (VRB). Cyclic voltammetry (CV) study confirmed that Nb2O5 has catalytic effects toward redox couples of V(II)/V(III) at the negative side and V(IV)/V(V) at the positive side to facilitate the electrochemical kinetics of the vanadium redox reactions. Because of poor conductivity of Nb2O5, the performance of the Nb2O5 loaded electrodes is strongly dependent on the nanosize and uniform distribution of catalysts on GF surfaces. Accordingly, an optimal amount of W-doped Nb2O5 nanorods with minimum agglomeration and improved distribution on GF surfaces are established by adding water-soluble compounds containing tungsten (W) into the precursor solutions. The corresponding energy efficiency is enhanced by ∼10.7% at high current density (150 mA·cm(-2)) as compared with one without catalysts. Flow battery cyclic performance also demonstrates the excellent stability of the as prepared Nb2O5 catalyst enhanced electrode. These results suggest that Nb2O5-based nanorods, replacing expensive noble metals, uniformly decorating GFs holds great promise as high-performance electrodes for VRB applications.

摘要

采用水热法合成了具有单斜相的纳米棒状低价、高效电催化剂 Nb2O5,并同时将其沉积在全钒液流电池(VRB)的石墨毡(GF)电极表面。循环伏安(CV)研究证实,Nb2O5 对负极 V(II)/V(III)氧化还原对和正极 V(IV)/V(V)氧化还原对具有催化作用,有利于钒氧化还原反应的电化学动力学。由于 Nb2O5 的导电性差,负载 Nb2O5 电极的性能强烈依赖于催化剂在 GF 表面的纳米尺寸和均匀分布。因此,通过在前驱体溶液中添加水溶性含钨(W)化合物,在 GF 表面建立了具有最小团聚和改善分布的最佳量的 W 掺杂 Nb2O5 纳米棒。与没有催化剂的情况相比,在高电流密度(150 mA·cm-2)下,能量效率提高了约 10.7%。流动电池循环性能也证明了所制备的 Nb2O5 催化剂增强电极具有优异的稳定性。这些结果表明,基于 Nb2O5 的纳米棒均匀修饰 GF 替代昂贵的贵金属,有望成为高性能 VRB 应用的电极。

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