论文标题
一维范德华异质结构作为有效的无金属氧电催化剂
One-dimensional van der Waals heterostructures as efficient metal-free oxygen electrocatalysts
论文作者
论文摘要
二维共价有机框架(2D-COF)是具有明确定义的分子结构的新兴催化材料家族。 2D纳米片和大型内在带盖的堆叠极大地损害了它们的性能。在这里,我们报告了由碳纳米管(CNT)核心组成的同轴一维范德华异异性结构(1D VDWH)和使用基于溶液的原位包装方法的厚度可调节的硫硫化苯苯苯苯;密度功能理论的计算以及operando和前拟南芥的光谱分析表明,硫噻吩基团的碳硫区是活性催化位点。独特的同轴结构可以根据COF壳厚度从CNT核心到COF壳,从而可以控制N掺杂,从而降低了COF的带隙和工作函数。因此,活性催化位点和吸附的氧中间体之间的电荷转移屏障变得较低,从而导致其氧氧化还原反应的催化活性显着增强。它在高电流密度为40 mA CM-2和出色的循环稳定性下,具有高性能可充电锌空气电池,其特定容量为696 mAh gzn-1。 1D VDWH为创建用于探索基本物理和化学的多维VDWH的大门,以及在电化学,电子,光子学及其他方面的实际应用。
Two-dimensional covalent organic frameworks (2D-COFs) are an emerging family of catalytical materials with well-defined molecular structures. The stacking of 2D nanosheets and large intrinsic bandgaps significantly impair their performance. Here, we report coaxial one-dimensional van der Waals heterostructures (1D vdWHs) comprised of a carbon nanotube (CNT) core and a thickness tunable thienothiophene-pyrene COF shell using a solution based in situ wrapping method. Density functional theory calculations and in-operando and ex-situ spectroscopic analysis show that the carbon-sulfur region in the thienothiophene groups is the active catalytic site. The unique coaxial structure enables controllable n-doping from the CNT core to the COF shell depending on COF shell thickness, which lowers the bandgap and work function of COF. Consequently, the charge transfer barrier between the active catalytic site and adsorbed oxygen intermediates becomes lower, resulting in a dramatic enhancement in their catalytic activity for oxygen redox reactions. It enables a high-performance rechargeable zinc-air battery with a specific capacity of 696 mAh gZn-1 under a high current density of 40 mA cm-2 and excellent cycling stability. 1D vdWHs open the door to create multi-dimensional vdWHs for exploring fundamental physics and chemistry, as well as practical applications in electrochemistry, electronics, photonics, and beyond.