Universidad Panamericana, Facultad de Ingeniería, Josemaría Escrivá de Balaguer 101, Aguascalientes, Ags, 20290, México.
Global Aqua Innovation Center, Shinshu University, Nagano City, 380-8553, Japan.
Adv Mater. 2019 Mar;31(13):e1805717. doi: 10.1002/adma.201805717. Epub 2019 Jan 27.
With the advent of carbon nanotechnology, which initiated significant research efforts more than two decades ago, novel materials for energy harvesting and storage have emerged at an amazing pace. Nevertheless, some fundamental applications are still dominated by traditional materials, and it is especially evident in the case of catalysis, and environmental-related electrochemical reactions, where precious metals such as Pt and Ir are widely used. Several strategies are being explored for achieving competitive and feasible metal-free carbon nanomaterials, among which doping and defect engineering approaches within nanocarbons are recurrent and promising. Here, the most recent efforts regarding the control of doping and defects in carbon nanostructures for catalysis, and in particular for energy-related applications, are addressed. Finally, an overview of alternative proposals that can make a difference when enabling carbon nanomaterials as efficient and emerging catalysts is presented.
随着碳纳米技术的出现,二十多年前引发了大量的研究工作,用于能量收集和存储的新型材料以惊人的速度涌现。然而,一些基本应用仍然由传统材料主导,特别是在催化和与环境相关的电化学反应中,广泛使用铂和铱等贵金属。目前正在探索几种策略来实现具有竞争力和可行的无金属碳纳米材料,其中掺杂和纳米碳中的缺陷工程方法是反复出现且有前途的。在这里,针对用于催化的碳纳米结构中掺杂和缺陷的控制,特别是针对与能源相关的应用,介绍了最近的研究进展。最后,提出了一些替代方案,当将碳纳米材料用作高效和新兴催化剂时,这些方案可能会产生影响。