论文标题

超干净的同位素工程双壁碳纳米管作为量身定制的宿主,以追踪Carbyne的生长

Ultra-clean isotope engineered double-walled carbon nanotubes as tailored hosts to trace the growth of carbyne

论文作者

Cui, Weili, Simon, Ferenc, Zhang, Yifan, Shi, Lei, Ayala, Paola, Pichler, Thomas

论文摘要

目前,由于预测出色的机械,光学和电气性能,SP1杂交一维碳同素同素异形外的Carbyne目前给予了越来越多的关注。尽管最近在双壁碳纳米管内(DWCNT)内部合成了限制的Carbyne合成的近期进展,但其形成机制和生长的前体仍然难以捉摸。在这里,我们展示了同位素工程超清洁DWCNT的合理设计,作为量身定制的宿主,以追踪Carbyne的生长,该宿主可以在高温退火时识别前体并揭示Carbyne的形成机制。使用这种方法,具有80.4%13C增强的内壁和自然丰富的外管的超净干燥DWCNT可以明确地证明DWCNT内的碳质材料只能充当前体。内管和外管之间的C原子的交换发生,而没有任何Carbyne的生长。应用二级氧化步骤后,可以从部分氧化的DWCNT中产生碳质前体。以这种方式,不仅具有约28.8%13C富集的Carbyne,而且还会发生伴随的愈合,重组和DWCNT的再生。这项工作使能够识别前体并追踪具有工程性能的限制性Carbyne的生长机制。这是一个至关重要的步骤,可以通过不仅量身定制同位素填充剂,还可以调整DWCNT宿主的内部和外管,以获取限制Carbyne混合动力车的全部应用潜力。

Increasing attention is currently given to carbyne, the sp1 hybridized one-dimensional carbon allotrope, because of its predicted outstanding mechanical, optical, and electrical properties. Although recently substantial progress has been reported on confined carbyne synthesized inside double-walled carbon nanotubes (DWCNTs), its formation mechanism and precursors for growth remain elusive. Here, we show a rational design of isotope engineered ultra-clean DWCNTs as tailored hosts to trace the growth of carbyne, which allows to identify the precursor and unravel the formation mechanism of carbyne during high-vacuum annealing at high-temperatures. Using this approach, ultra-clean DWCNTs with 80.4% 13C-enriched inner walls and outer tubes of naturally abundant served to unambiguously prove that only the carbonaceous materials inside the DWCNTs can act as precursors. The exchange of C atoms between inner and outer tubes happens without any growth of carbyne. After applying a secondary oxidation step, it is possible to produce the carbonaceous precursors from the partially oxidized DWCNTs. In this manner, not only carbyne with a record of ~28.8% 13C enrichment is grown, but concomitant healing, reorganization and regrowth of the DWCNTs occurs. This work enables to identify the precursor and trace the growth mechanism of confined carbyne with engineered properties. This is a crucial step, towards accessing the full application potential of confined carbyne hybrids by tailoring not only the isotopic fillers, but also the inner and outer tubes of the DWCNT hosts.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源