Zhao Jingjing, Rafat Md Nazmodduha, Yoon Chang-Min, Oh Won-Chun
College of Pharmaceutical Sciences, North China University of Science and Technology, Tangshan 063210, China.
Department of Advanced Materials Science & Engineering, Hanseo University, Seosan-si 31962, Korea.
Nanomaterials (Basel). 2022 Oct 17;12(20):3639. doi: 10.3390/nano12203639.
In this work, a novel ternary nanocomposites AgZnS-TiO-reduced graphene oxide (RGO) was successfully synthesized by a facile soft ultrasonic-reduction condition as low as 70 °C. During the ultrasound reaction, the reduction of GO and the growth of AgZnS and TiO crystals occurred simultaneously in conjunction with the deposition of AgZnS and TiO crystals onto the surface of the graphene. The synthesized nanocatalysts were characterized by XRD, SEM, TEM, EDX, Raman spectroscopy, XPS, UV-Vis DRS, photoluminescence spectrometer, and photocurrent and CV. The AgZnS-G-T was shown as catalytic HER with some synnegetic factors such as pH-universal, temperature, and ultrasonic condition. After 4 h, it was observed that AgZnS-TiO-RGO has the highest efficiency of photocatalytic activity through hydrogen production by water splitting, which achieved the highest hydrogen evolution rate of 930.45 μmol/g at buffer solution (pH = 5), which was superior to AgZnS-G (790.1 µmole/g) and AgZnS (701.2 µmole/g). Such a significant hydrogen evolution amount far exceeded that of undoped TiO and RGO. The H evolution amounts increased significantly at ultrasonic irradiation power of 80 MHz. AgZnS-G-T demonstrates the higher H evolution amounts of 985 µmole/g at 80 MHz. Its photocatalytic hydrogen-evolution activity remained at a high level over four cycles (16 h) nanoparticle.
在本工作中,通过简便的软超声还原条件(低至70°C)成功合成了一种新型三元纳米复合材料AgZnS-TiO-还原氧化石墨烯(RGO)。在超声反应过程中,氧化石墨烯的还原以及AgZnS和TiO晶体的生长同时发生,同时AgZnS和TiO晶体沉积在石墨烯表面。通过XRD、SEM、TEM、EDX、拉曼光谱、XPS、紫外可见漫反射光谱、光致发光光谱仪以及光电流和循环伏安法对合成的纳米催化剂进行了表征。AgZnS-G-T表现出催化析氢性能,并具有一些协同因素,如pH通用性、温度和超声条件。4小时后观察到,AgZnS-TiO-RGO通过光解水制氢具有最高的光催化活性效率,在缓冲溶液(pH = 5)中实现了930.45 μmol/g的最高析氢速率,优于AgZnS-G(790.1 μmol/g)和AgZnS(701.2 μmol/g)。如此显著的析氢量远远超过了未掺杂的TiO和RGO。在80 MHz的超声辐照功率下,析氢量显著增加。AgZnS-G-T在80 MHz时表现出更高的析氢量,为985 μmol/g。其光催化析氢活性在四个循环(16小时)的纳米颗粒上保持在较高水平。