Department of Chemistry, Southern University of Science and Technology, Shenzhen, 518055, China.
School of Physical Sciences, Great Bay University, Dongguan, 523000, China.
J Am Chem Soc. 2023 Jun 14;145(23):12760-12770. doi: 10.1021/jacs.3c03128. Epub 2023 May 8.
Tungsten and molybdenum carbides have shown great potential in catalysis and superconductivity. However, the synthesis of ultrathin W/Mo carbides with a controlled dimension and unique structure is still difficult. Here, inspired by the host-guest assembly strategy with single-walled carbon nanotubes (SWCNTs) as a transparent template, we reported the synthesis of ultrathin (0.8-2.0 nm) WC and MoC nanowires confined in SWCNTs deriving from the encapsulated W/Mo polyoxometalate clusters. The atom-resolved electron microscope combined with spectroscopy and theoretical calculations revealed that the strong interaction between the highly carbophilic W/Mo and SWCNT resulted in the anisotropic growth of carbide nanowires along a specific crystal direction, accompanied by lattice strain and electron donation to the SWCNTs. The SWCNT template endowed carbides with resistance to HO corrosion. Different from normal modification on the outer surface of SWCNTs, such MC@SWCNTs (M = W, Mo) provided a delocalized and electron-enriched SWCNT surface to uniformly construct the negatively charged Pd catalyst, which was demonstrated to inhibit the formation of active PdH hydride and thus achieve highly selective semihydrogenation of a series of alkynes. This work could provide a nondestructive way to design the electron-delocalized SWCNT surface and expand the methodology in synthesizing unusual 1D ultrathin carbophilic-metal nanowires (e.g., TaC, NbC, β-W) with precise control of the anisotropy in SWCNT arrays.
碳化钨和碳化钼在催化和超导领域表现出巨大的潜力。然而,合成具有可控尺寸和独特结构的超薄 W/Mo 碳化物仍然具有挑战性。在这里,受单壁碳纳米管(SWCNTs)作为透明模板的主客体组装策略的启发,我们报道了通过封装的 W/Mo 多金属氧酸盐簇合成的超薄(0.8-2.0nm)WC 和 MoC 纳米线,其限域在 SWCNTs 中。原子分辨电子显微镜结合光谱和理论计算表明,高度亲碳化钨/钼与 SWCNT 之间的强相互作用导致了碳化物纳米线沿着特定晶体方向的各向异性生长,同时伴随着晶格应变和电子向 SWCNT 的供体。SWCNT 模板赋予了碳化物对 HO 腐蚀的抵抗力。与 SWCNT 外表面的正常修饰不同,这种 MC@SWCNTs(M=W,Mo)提供了一个离域和富电子的 SWCNT 表面,以均匀构建带负电荷的 Pd 催化剂,从而抑制了活性 PdH 氢化物的形成,从而实现了一系列炔烃的高选择性半氢化。这项工作为设计离域电子的 SWCNT 表面提供了一种非破坏性方法,并扩展了在 SWCNT 阵列中精确控制各向异性来合成不常见的 1D 超薄亲碳化钨/钼纳米线(例如 TaC、NbC、β-W)的方法。