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Facile general strategy toward hierarchical mesoporous transition metal oxides arrays on three-dimensional macroporous foam with superior lithium storage properties

机译:在具有优异锂存储特性的三维大孔泡沫上实现分层介孔过渡金属氧化物阵列的简便通用策略

摘要

Nanostructured transition metal oxides (NTMOs) with hierarchically porous structures grown on conductive substrates have been considered as promising electrode materials for lithium-ion batteries (LIBs). However, a grand challenge still exists in developing facile and generalized approaches for rational design and fabrication of them in large scale. Here we first present a facile general strategy, namely, chemical bath deposition followed by calcination, for the scalable synthesis of diverse NTMOs arrays with hierarchically porous structures and their corresponding hybrid nanowire arrays that are directly grown on conductive substrates. When directly used as binder- and conductive-agent-free anodes for LIBs, the resultant nanoarchitectured electrodes manifest outstanding electrochemical performances with high specific capacity, superior rate capability and excellent cycling stability. Specifically, a high reversible capacity of 1145mAhg-1 is retained after 100 cycles at 100mAg-1, and a reversible capacity up to 639mAhg-1 even after 500 cycles at a current density as high as 1000mAg-1 can be maintained by using hierarchically porous flower-like ZnCo2O4 nanosheets as anode material, holding great promise as efficient electrodes for LIBs. This facile general strategy could represent a milestone in the design and synthesis of various hierarchical mesoporous self-supported NTMOs arrays and hybrid hierarchical nanocomposites that are promising for a wide range of applications such as electrochemical energy storage, catalysis, gas sensors and other fields.
机译:具有在导电基底上生长的分层多孔结构的纳米结构过渡金属氧化物(NTMO)被认为是锂离子电池(LIB)的有前途的电极材料。然而,在开发用于大规模合理设计和制造它们的简便且通用的方法时,仍然存在巨大挑战。在这里,我们首先提出一种简便的一般策略,即化学浴沉积后进行煅烧,以用于可分级合成具有分级多孔结构的各种NTMO阵列及其直接在导电衬底上生长的相应杂化纳米线阵列。当直接用作LIB的无粘合剂和无导电剂的阳极时,所得的纳米结构电极表现出出色的电化学性能,具有高比容量,优异的倍率性能和出色的循环稳定性。具体而言,在100mAg-1下100次循环后,可逆容量保持在1145mAhg-1的高水平,通过使用分层多孔结构,即使在500次循环后,在电流密度高达1000mAg-1时仍可保持高达639mAhg-1的可逆容量。花状ZnCo2O4纳米片作为阳极材料,有望成为LIB的高效电极。这种简便的通用策略可能代表着各种分层介孔自支撑NTMO阵列和混合分层纳米复合材料的设计和合成中的一个里程碑,这些纳米复合材料有望在电化学能量存储,催化,气体传感器和其他领域等广泛的应用中得到应用。

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