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Heteroatom-Doped Flash Graphene

杂原子 石墨烯 材料科学 掺杂剂 兴奋剂 氮化硼 纳米技术 无机化学 化学工程 有机化学 化学 光电子学 工程类 戒指(化学)
作者
Weiyin Chen,Chang Ge,John T. Li,Jacob L. Beckham,Zhe Yuan,Kevin M. Wyss,Paul A. Advincula,Lucas Eddy,Carter Kittrell,Jinhang Chen,Duy Xuan Luong,Robert A. Carter,James M. Tour
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (4): 6646-6656 被引量:141
标识
DOI:10.1021/acsnano.2c01136
摘要

Heteroatom doping can effectively tailor the local structures and electronic states of intrinsic two-dimensional materials, and endow them with modified optical, electrical, and mechanical properties. Recent studies have shown the feasibility of preparing doped graphene from graphene oxide and its derivatives via some post-treatments, including solid-state and solvothermal methods, but they require reactive and harsh reagents. However, direct synthesis of various heteroatom-doped graphene in larger quantities and high purity through bottom-up methods remains challenging. Here, we report catalyst-free and solvent-free direct synthesis of graphene doped with various heteroatoms in bulk via flash Joule heating (FJH). Seven types of heteroatom-doped flash graphene (FG) are synthesized through millisecond flashing, including single-element-doped FG (boron, nitrogen, oxygen, phosphorus, sulfur), two-element-co-doped FG (boron and nitrogen), as well as three-element-co-doped FG (boron, nitrogen, and sulfur). A variety of low-cost dopants, such as elements, oxides, and organic compounds are used. The graphene quality of heteroatom-doped FG is high, and similar to intrinsic FG, the material exhibits turbostraticity, increased interlayer spacing, and superior dispersibility. Electrochemical oxygen reduction reaction of different heteroatom-doped FG is tested, and sulfur-doped FG shows the best performance. Lithium metal battery tests demonstrate that nitrogen-doped FG exhibits a smaller nucleation overpotential compared to Cu or undoped FG. The electrical energy cost for the synthesis of heteroatom-doped FG synthesis is only 1.2 to 10.7 kJ g-1, which could render the FJH method suitable for low-cost mass production of heteroatom-doped graphene.
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