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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Ultrafine Ag/MnOx nanowire-constructed hair-like nanoarchitecture: In situ synthesis, formation mechanism and its supercapacitive property
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Ultrafine Ag/MnOx nanowire-constructed hair-like nanoarchitecture: In situ synthesis, formation mechanism and its supercapacitive property

机译:Ag / MnOx纳米线构成的超细毛状纳米结构:原位合成,形成机理及其超电容性能

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摘要

Hair-like (HL) nanoarchitectures constructed by ultrafine MnOx nanowires (similar to 7 nm) with ultrafine Ag nanoparticles anchored on were synthesized by in situ facile reaction between silver (Ag) nanowires and potassium permanganate (KMnO4), and followed by a following hydrothermal method. Based on a serious of time-dependent experiments, an orderly merged Kirkendall effect and dissolution-recrystallization (Ostwald ripening) mechanism were proposed for the formation of this novel morphology. The as-prepared HL Ag/MnOx nanocomposites as electrode exhibited a high specific capacitance (526 Fg(-1) at scan rate of 5 mV s(-1) and 450 Fg(-1) at current density of 0.1 Ag-1), good rate capability (ca. 45.5% retention with reference to 205 Fg(-1) at 50 times higher current density of 5 Ag-1) and desirable cycle stability (ranging from initial of 237 Fg(-1) to 185 Fg(-1) after 800 cycles and still maintaining 87% retention compared to 800th cycle after another 2800 cycles at current density of 2 Ag-1). Such desirable performance could be attributed to HL Ag/MnOx nanocomposites core (tubular nanosheets) with uniform dispersion of the ultrafine Ag nanoparticals provides a direct pathway for electron transport while the partial connected ultrafine nanowires networks with high specific surface area provides more electronic transmission channels and easy permeation of electrolyte, decreasing the polarization of the electrode and thus enhancing the discharge capacity and high-rate capability. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过银(Ag)纳米线和高锰酸钾(KMnO4)之间的原位易反应,合成了由锚定有超细Ag纳米粒子的超细MnOx纳米线(类似于7 nm)构造的头发状(HL)纳米结构。方法。在大量的时间依赖性实验的基础上,提出了有序的合并的克肯德尔效应和溶解-再结晶(奥斯特瓦尔德熟化)机理,以形成这种新的形态。制备的HL Ag / MnOx纳米复合材料作为电极表现出高的比电容(扫描速率为5 mV s(-1)时为526 Fg(-1),电流密度为0.1 Ag-1时为450 Fg(-1)) ,良好的倍率能力(在5 Ag-1的高电流密度的50倍时,相对于205 Fg(-1)的保留率为45.5%)和所需的循环稳定性(从初始237 Fg(-1)到185 Fg( -1)经过800次循环后,与在2 Ag-1)的电流密度下经过2800次循环后的第800次循环相比,仍保持87%的保留率。这种理想的性能可归因于HL Ag / MnOx纳米复合材料核(管状纳米片),超细Ag纳米颗粒的均匀分散为电子传输提供了直接途径,而具有高比表面积的部分连接的超细纳米线网络提供了更多的电子传输通道,并且电解液易于渗透,减少电极的极化,从而提高了放电容量和高倍率容量。 (C)2015 Elsevier B.V.保留所有权利。

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