School of Biological Sciences and Engineering, Yachay Tech University, Hacienda San José s/n, San Miguel de Urcuquí 100119, Ecuador.
Center for Midstream Management and Science, Lamar University, Beaumont, TX 77710, USA.
Molecules. 2021 Jul 29;26(15):4585. doi: 10.3390/molecules26154585.
Nanomaterials have supported important technological advances due to their unique properties and their applicability in various fields, such as biomedicine, catalysis, environment, energy, and electronics. This has triggered a tremendous increase in their demand. In turn, materials scientists have sought facile methods to produce nanomaterials of desired features, i.e., morphology, composition, colloidal stability, and surface chemistry, as these determine the targeted application. The advent of photoprocesses has enabled the easy, fast, scalable, and cost- and energy-effective production of metallic nanoparticles of controlled properties without the use of harmful reagents or sophisticated equipment. Herein, we overview the synthesis of gold and silver nanoparticles via photochemical routes. We extensively discuss the effect of varying the experimental parameters, such as the pH, exposure time, and source of irradiation, the use or not of reductants and surfactants, reagents' nature and concentration, on the outcomes of these noble nanoparticles, namely, their size, shape, and colloidal stability. The hypothetical mechanisms that govern these green processes are discussed whenever available. Finally, we mention their applications and insights for future developments.
纳米材料因其独特的性质及其在生物医学、催化、环境、能源和电子等各个领域的适用性,为重要的技术进步提供了支持。这引发了对它们的需求的巨大增长。反过来,材料科学家们一直在寻求简便的方法来生产具有所需特性的纳米材料,即形态、组成、胶体稳定性和表面化学性质,因为这些特性决定了目标应用。光过程的出现使得可以在不使用有害试剂或复杂设备的情况下,通过光化学途径轻松、快速、可扩展且具有成本效益和节能效益地生产具有可控性质的金属纳米粒子。在此,我们综述了通过光化学途径合成金和银纳米粒子。我们广泛讨论了改变实验参数(例如 pH 值、暴露时间和辐射源、是否使用还原剂和表面活性剂、试剂的性质和浓度)对这些贵金属纳米粒子(即尺寸、形状和胶体稳定性)的结果的影响。只要有可用的信息,就会讨论控制这些绿色过程的假设机制。最后,我们提到了它们的应用和对未来发展的见解。