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Hybrid Design Using Carbon Nanotubes Decorated with Mo2C and W2C Nanoparticles for Supercapacitors and Hydrogen Evolution Reactions

机译:使用用MO2C和W2C纳米粒子装饰的碳纳米管的混合动力车设计,用于超级电容器和氢气进化反应

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In view of recent environmental concerns, the need for energy security, and the ever-increasing demand for portable systems, the scientific community is strongly motivated to develop sustainable and renewable energy devices. Recently, the hydrogen evolution reaction (HER) and supercapacitors have become highly feasible technologies for supporting the global energy requirements. For this purpose, an efficient interface between carbon nanotubes (CNTs) decorated with metal carbide nanosheets (designated W2C@CNT and Mo2C@CNT) is developed herein via a facile one-pot methodology followed by carbonization. The hierarchical Mo2C@CNT nanostructures exhibit a symmetric capacitance of 367 F.g(-1) at a current density of 1 .Ag-1, and a high energy density of 50.9 W.h.kg(-1) at a power density of 500 W.kg(-1), along with an outstanding cycling stability with similar to 97% capacity retention after 5000 cycles. In addition, both hybrids exhibit excellent HER performances in acidic and alkaline media, along with remarkable long-term stabilities for 24 h compared with pure CNTs. Thus, in an acidic medium, W2C@CNT and Mo2C@CNT exhibit small overpotentials of 155 and 121 mV and shallow Tafel slopes of 85 and 77 mV.dec(-1). Similarly, in an alkaline medium, the respective overpotentials are 125 and 118 mV and the respective Tafel slopes are 104 and 92 mV.dec(-1). The hierarchical structured W2C@CNT and Mo2C@CNT afford numerous pores or abundant active catalytic sites with large contact areas for the electrolyte and high conductivity, thus enabling superior electrochemical performance by facilitating the easy transfer of electrons or ions.
机译:鉴于最近的环境问题,能源安全的需求以及对便携式系统的不断增加的需求,科学界强烈有动力开发可持续和可再生能源设备。最近,氢进化反应(她)和超级电容器已经成为支持全球能量要求的高度可行的技术。为此目的,通过金属碳化物纳米片(指定的W2C @ CNT和MO2C @ CNT)的碳纳米管(CNT)之间的有效接口通过容易的单罐方法在本文中开发,然后进行碳化。等级MO2C @ CNT纳米结构在电流密度为1 .AG-1的电流密度,高能量密度为500W.kg的功率密度,具有367 fg(-1)的对称电容。 (-1),以及出色的循环稳定性,在5000次循环后的容量保持相似。此外,两种杂种在酸性和碱性介质中表现出优异的她的性能,以及24小时的显着长期稳定性与纯CNT相比。因此,在酸性培养基中,W2C / MO 2C @ CNT表现出155和121mV的小过电并为85和77mV.dec(-1)的浅滴落斜率。类似地,在碱性介质中,相应的过电位是125和118mV,相应的Tafel斜率为104和92mV.dec(-1)。分层结构化W2C @ CNT和MO2C @ CNT提供许多孔或丰富的活性催化位点,具有大的接触区域,用于电解质和高导电性,从而通过促进电子或离子的易转移来实现优异的电化学性能。

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