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The Bright Future for Electrode Materials of Energy Devices: Highly Conductive Porous Na-Embedded Carbon

机译:能源设备电极材料的光明前景:高导电性多孔Na嵌入碳

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摘要

High electrical conductivity and large accessible surface area, which are required for ideal electrode materials of energy conversion and storage devices, are opposed to each other in current materials. It is a long-term goal to solve this issue. Herein, we report highly conductive porous Naembedded carbon (Na@C) nanowalls with large surface areas, which have been synthesized by an invented reaction of CO with liquid Na. Their electrical conductivities are 2 orders of magnitude larger than highly conductive 3D graphene. Furthermore, almost all their surface areas are accessible for electrolyte ions. These unique properties make them ideal electrode materials for energy devices, which significantly surpass expensive Pt. Consequently, the dye-sensitized solar cells (DSSCs) with the Na@C counter electrode has reached a high power conversion efficiency of 11.03%. The Na@C also exhibited excellent performance for supercapacitors, leading to high capacitance of 145 F g(-1) at current density of 1 A g(-1).
机译:能量转换和存储设备的理想电极材料所需的高电导率和较大的可及表面积在当前材料中彼此相对。解决这个问题是一个长期目标。在此,我们报道了具有大表面积的高导电性多孔Naembedded碳(Na @ C)纳米壁,这是通过CO与液态Na的发明反应合成的。它们的电导率比高导电3D石墨烯大2个数量级。此外,几乎所有的表面积都可用于电解质离子。这些独特的性能使它们成为能量设备的理想电极材料,大大超过了昂贵的Pt。因此,带有Na @ C对电极的染料敏化太阳能电池(DSSC)已达到11.03%的高功率转换效率。 Na @ C对超级电容器也表现出出色的性能,在电流密度为1 A g(-1)时导致145 F g(-1)的高电容。

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