Chen Huimei, Zhou Ziniu, Chen Wei, Xiang Ziwei, Nie Haiyan, Yu Weiguo
Zhejiang Pharmaceutical College Ningbo 315503 PR China
RSC Adv. 2021 Nov 10;11(57):36174-36180. doi: 10.1039/d1ra06465g. eCollection 2021 Nov 4.
It has been reported that Pd nanoparticles were a little weak to bind to the dried microbial (yeast) surface, leading to the poor stability of the bio-supported catalysts. The objectives of the study are to construct stable Pd nanocatalysts supported on the dried yeast surface with the help of a tiny amount (<0.1 wt%) of reduced graphene oxide (Pd/yeast/rGO) and apply the catalysts in environmental pollutant remediation. The characterizations of the as-obtained Pd/yeast/rGO catalysts showed that reduced GO could cover Pd/yeast materials and prepare 15-21 nm Pd nanoparticles under acid and base media. The catalytic performance of the Pd/yeast/rGO catalyst was compared with that of control Pd/yeast catalysts without GO. The results revealed the kinetic constant in the reduction of 4-nitrophenol of Pd/yeast/rGO catalysts could reach 3.6 × 10 s without stirring during the reaction, which was 2.4 times higher than that of Pd/yeast catalysts, and the Pd/yeast/rGO catalysts kept a good stability even after being reused in seven cycles. Furthermore, the catalysts also showed quite good catalytic activities on CO oxidation and decolorization of dye methylene blue (MB). Thus, Pd/yeast/rGO catalysts were proven to be highly active and stable for environmental remediation and have the advantage that they can prevent the loss of noble metals and be prepared conveniently from discarded microorganisms.
据报道,钯纳米颗粒与干燥的微生物(酵母)表面结合力较弱,导致生物负载型催化剂稳定性较差。本研究的目的是借助少量(<0.1 wt%)的还原氧化石墨烯构建负载在干燥酵母表面的稳定钯纳米催化剂(Pd/酵母/rGO),并将该催化剂应用于环境污染物修复。对所得Pd/酵母/rGO催化剂的表征表明,还原氧化石墨烯可以覆盖Pd/酵母材料,并在酸碱介质下制备出15 - 21 nm的钯纳米颗粒。将Pd/酵母/rGO催化剂的催化性能与不含氧化石墨烯的对照Pd/酵母催化剂进行了比较。结果表明,Pd/酵母/rGO催化剂在反应过程中不搅拌的情况下,对4-硝基苯酚还原的动力学常数可达到3.6×10 s,是Pd/酵母催化剂的2.4倍,并且Pd/酵母/rGO催化剂即使在重复使用7个循环后仍保持良好的稳定性。此外,该催化剂对CO氧化和染料亚甲基蓝(MB)的脱色也表现出相当好的催化活性。因此,Pd/酵母/rGO催化剂被证明对环境修复具有高活性和稳定性,并且具有可以防止贵金属流失以及可方便地从废弃微生物制备的优点。