Cho Yun Seong, Rhee Dongjoon, Eom Jeongha, Kim Jihyun, Jung Myeongjin, Son Youngdoo, Han Young-Kyu, Kim Ki Kang, Kang Joohoon
School of Advanced Materials Science and Engineering Sungkyunkwan University (SKKU) Suwon 16419 Republic of Korea.
Department of Industrial and Systems Engineering Dongguk University-Seoul Seoul 04620 Republic of Korea.
Small Sci. 2022 Aug 2;2(9):2200043. doi: 10.1002/smsc.202200043. eCollection 2022 Sep.
Nanostructuring of Pt nanocatalysts increases the surface-to-volume ratio, thus enabling efficient usage of Pt for hydrogen evolution reaction (HER). Direct electrochemical reduction of Pt on the electrode can produce nanostructured Pt catalysts, which has been time-consuming for the conventional colloidal synthesis. However, carbon-based growth templates commonly used to create Pt nanoparticles offer limited control over morphologies and HER performance. Herein, a facile electrochemical synthesis of Pt nanoflowers (NFs) with well-defined petals is presented. Semiconducting MoS nanosheets are solution processed into a film on a carbon paper (CP) to synthesize Pt NFs upon reduction of Pt precursor. The Pt NFs show higher HER activities than spherical or spiky Pt nanoparticles because of their larger active surface area and enable faster release of hydrogen bubbles during HER. By generating sulfur vacancies and MoO on the MoS template using a reactive ion etching, the areal density and spatial uniformity of Pt NFs can be greatly enhanced and a mass activity can be achieved more than 10 times as high as that of the conventional Pt/C electrode. Multiple electrodes with nearly similar electrochemical properties can be repeatedly produced by using a single precursor solution, which highlights the cost-efficiency and scalability of our synthesis strategy.
铂纳米催化剂的纳米结构化增加了表面积与体积之比,从而能够有效地将铂用于析氢反应(HER)。在电极上直接电化学还原铂可以制备纳米结构化的铂催化剂,这对于传统的胶体合成来说一直很耗时。然而,常用于制备铂纳米颗粒的碳基生长模板对形态和HER性能的控制有限。在此,我们展示了一种简便的电化学合成方法,可制备具有明确花瓣状结构的铂纳米花(NFs)。将半导体二硫化钼(MoS)纳米片通过溶液处理在碳纸(CP)上形成薄膜,在铂前驱体还原时合成铂纳米花。铂纳米花由于其更大的活性表面积,显示出比球形或尖状铂纳米颗粒更高的HER活性,并且在HER过程中能够更快地释放氢气气泡。通过使用反应离子刻蚀在MoS模板上产生硫空位和MoO,铂纳米花的面密度和空间均匀性可以大大提高,质量活性可以达到传统铂/碳电极的10倍以上。使用单一前驱体溶液可以重复制备多个具有几乎相似电化学性质的电极,这突出了我们合成策略的成本效益和可扩展性。