Peiris Sunari, Sarina Sarina, Han Chenhui, Xiao Qi, Zhu Huai-Yong
School of Chemistry, Physics and Mechanical Engineering, Faculty of Science and Technology, Queensland University of Technology, Brisbane, QLD 4001, Australia.
Dalton Trans. 2017 Aug 15;46(32):10665-10672. doi: 10.1039/c7dt00418d.
Silver-palladium (Ag-Pd) alloy nanoparticles strongly absorb visible light and exhibit significantly higher photocatalytic activity compared to both pure palladium (Pd) and silver (Ag) nanoparticles. Photocatalysts of Ag-Pd alloy nanoparticles on ZrO and AlO supports are developed to catalyze the nitroaromatic coupling to the corresponding azo compounds under visible light irradiation. Ag-Pd alloy NP/ZrO exhibited the highest photocatalytic activity for nitrobenzene coupling to azobenzene (yield of ∼80% in 3 hours). The photocatalytic efficiency could be optimized by altering the Ag : Pd ratio of the alloy nanoparticles, irradiation light intensity, temperature and wavelength. The rate of the reaction depends on the population and energy of the excited electrons, which can be improved by increasing the light intensity or by using a shorter wavelength. The knowledge developed in this study may inspire further studies on Ag alloy photocatalysts and organic syntheses using Ag-Pd nanoparticle catalysts driven under visible light Irradiation.
银钯(Ag-Pd)合金纳米颗粒强烈吸收可见光,并且与纯钯(Pd)和银(Ag)纳米颗粒相比,表现出显著更高的光催化活性。开发了负载在ZrO和AlO上的Ag-Pd合金纳米颗粒光催化剂,以在可见光照射下催化硝基芳烃偶联生成相应的偶氮化合物。Ag-Pd合金NP/ZrO对硝基苯偶联生成偶氮苯表现出最高的光催化活性(3小时内产率约为80%)。通过改变合金纳米颗粒的Ag : Pd比例、照射光强度、温度和波长,可以优化光催化效率。反应速率取决于激发电子的数量和能量,这可以通过增加光强度或使用更短波长来提高。本研究中获得的知识可能会激发对Ag合金光催化剂以及使用在可见光照射下驱动的Ag-Pd纳米颗粒催化剂进行有机合成的进一步研究。