Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Luoyu Road No. 1037, Wuhan, 430074, China.
Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education, School of Chemistry, Northeast Normal University, Changchun, 130024, China.
Small. 2023 Apr;19(16):e2207646. doi: 10.1002/smll.202207646. Epub 2023 Jan 20.
Porous carbon materials with hollow structure, on account of the extraordinary morphology, reveal fascinating prospects in lithium-ion batteries, electrocatalysis, etc. However, collapse in ultrathin carbon spheres due to insufficient rigidity in such thin materials obstructs further enhanced capability. Based on hyper-crosslinked polymers (HCPs) with sufficient pore structure and rigid framework, a new bottom-up strategy is proposed to construct SiO @HCPs directly from aromatic monomers. Heteroatom and function groups can be facilely introduced to the skeleton. The thickness of HCPs' wall can be tuned from 9 to 20 nm, which is much thinner than that of hollow sphere synthesized by the traditional method, and the sample with a thickness of 20 nm shows the highest surface area of 1633 m g . The oxygen reduction reaction is conducted and the CoNHCS electrocatalysts with an ultrathin thickness of 5 nm display higher half-wave potential than those of bulk samples, even better than commercial Pt/C electrode. On account of the hollow structure, the relative current density loss of electrocatalysts is only 4.1% in comparison with 27.7% in Pt/C electrode during the 15 000 s test, indicating an obvious higher long-term stability. The new strategy to construct hollow HCPs may shed light on efficient chemical catalysis, drug delivery, and electrocatalysis.
具有中空结构的多孔碳材料,由于其独特的形态,在锂离子电池、电催化等领域展现出了诱人的前景。然而,由于这种超薄材料的刚性不足,超薄碳球会发生坍塌,从而阻碍了进一步增强其性能的可能性。本工作基于具有丰富孔结构和刚性骨架的超交联聚合物(HCPs),提出了一种从芳族单体直接构建 SiO@HCPs 的新的自下而上策略。杂原子和功能基团可以很容易地引入到骨架中。HCPs 壁的厚度可以从 9nm 调至 20nm,比传统方法合成的空心球薄得多,而厚度为 20nm 的样品具有最高的比表面积 1633m2/g。进行了氧还原反应,具有超薄厚度 5nm 的 CoNHCS 电催化剂的半波电位高于体相样品,甚至优于商业 Pt/C 电极。由于中空结构,电催化剂的相对电流密度损失仅为 15000s 测试中 27.7%,而 Pt/C 电极的 4.1%,表明其具有更高的长期稳定性。构建中空 HCPs 的新策略可能为高效化学催化、药物输送和电催化提供新的思路。