Hao Wenjun, Su Xinyu, Lu Shan, Wang Jiaqian, Chen Hui, Chen Qinlong, Wang Bo, Kong Xueqian, Jin Chuanhong, Han Gaorong, Han Zhongkang, Müllen Klaus, Chen Zongping
State Key Laboratory of Silicon Materials, School of Materials Science and Engineering, Zhejiang University, Hangzhou, 310030, China.
College of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, 266510, China.
Small. 2023 Jul;19(30):e2302220. doi: 10.1002/smll.202302220. Epub 2023 May 14.
Graphdiyne (GDY) is a fascinating graphene-like 2D carbon allotrope comprising sp and sp hybridized carbon atoms. However, GDY materials synthesized by solution-phase methods normally come as thick and porous films or amorphous powders with severely disordered stacking modes that obstruct macroscopic applications. Here, a facile and scalable synthesis of ultrathin holey graphdiyne (HGDY) nanosheets is reported via palladium/copper co-catalyzed homocoupling of 1,3,5-triethynylbenzene. The resulting freestanding 2D HGDY self-assembles into 3D foam-like networks which can in situ anchor clusters of palladium atoms on their surfaces. The Pd/HGDY hybrids exhibit high electrocatalytic activity and stability for the oxygen reduction reaction which outperforms that of Pt/C benchmark. Based on the ultrathin graphene-like sheets and their unique 3D interconnected macrostructures, Pd/HGDY holds great promise for practical electrochemical catalysis and energy-related applications.
石墨炔(GDY)是一种引人入胜的类石墨烯二维碳同素异形体,由sp和sp杂化的碳原子组成。然而,通过溶液相法合成的GDY材料通常呈现为厚的多孔薄膜或无定形粉末,其堆积模式严重无序,阻碍了宏观应用。在此,报道了一种通过钯/铜共催化1,3,5-三乙炔基苯的均偶联反应,简便且可扩展地合成超薄多孔石墨炔(HGDY)纳米片的方法。所得的独立二维HGDY自组装成三维泡沫状网络,该网络可在其表面原位锚定钯原子簇。Pd/HGDY杂化物对氧还原反应表现出高电催化活性和稳定性,优于Pt/C基准材料。基于超薄的类石墨烯片及其独特的三维互连宏观结构,Pd/HGDY在实际电化学催化和能源相关应用方面具有巨大潜力。