Zhang Kexi, Yan Bingdong, Wang Xiaohong, Cao Yang, Hao Wanjun, Tu Jinchun
State Key Laboratory of Marine Resource Utilization in South China Sea, School of Materials Science and Engineering, Hainan University, Haikou 570228, China.
College of Science, Laboratory of Child Cognition & Behavior Development of Hainan Province, Qiongtai Normal University, Haikou 571127, China.
Biosensors (Basel). 2024 Dec 31;15(1):11. doi: 10.3390/bios15010011.
With the rapid development of modern science and technology and the diversification of social needs, traditional single-performance materials struggle to meet the complex and changeable application scenarios. To address the multifaceted requirements of biomedical applications, such as disease diagnosis and treatment, scientists are dedicated to developing new multifunctional biomaterials with multiple activities. BiTiO (BTO), despite its versatility and application potential, has insufficient photocatalytic performance. Silver nanoparticles (Ag) and TiCT are particularly effective as antibacterial materials but they have relatively single functions. In this study, BTO/Ag/TiCT biomultifunctional materials were constructed by combining BTO with Ag and TiCT. We discovered that the addition of Ag and TiCT effectively optimized the visible light absorption characteristics of BTO, reduced the electron transfer resistance, and increased the carrier concentration, thus significantly improving the photocatalytic performance of composite material, thereby markedly improving the composite's photocatalytic performance and its efficacy in photochemical sensing and photodegradation. At the same time, BTO, as a carrier, effectively avoids Ag and TiCT agglomeration and gives full play to its antibacterial properties. In the specific performance studies, ascorbic acid and MB were used as the subjects of photochemical sensing and photodegradation properties, while and were tested for antibacterial properties. The BTO/Ag/TiCT composite showed remarkable results in all assessments, demonstrating its potential as a versatile antibacterial and photocatalytic material.
随着现代科学技术的飞速发展和社会需求的多样化,传统的单一性能材料难以满足复杂多变的应用场景。为了满足生物医学应用的多方面需求,如疾病诊断和治疗,科学家们致力于开发具有多种活性的新型多功能生物材料。尽管BiTiO(BTO)具有多功能性和应用潜力,但其光催化性能不足。银纳米颗粒(Ag)和TiCT作为抗菌材料特别有效,但它们的功能相对单一。在本研究中,通过将BTO与Ag和TiCT结合构建了BTO/Ag/TiCT生物多功能材料。我们发现,添加Ag和TiCT有效地优化了BTO的可见光吸收特性,降低了电子转移电阻,并增加了载流子浓度,从而显著提高了复合材料的光催化性能,进而显著提高了复合材料的光催化性能及其在光化学传感和光降解方面的功效。同时,BTO作为载体,有效地避免了Ag和TiCT的团聚,并充分发挥了其抗菌性能。在具体性能研究中,以抗坏血酸和亚甲基蓝作为光化学传感和光降解性能的研究对象,同时对抗菌性能进行了测试。BTO/Ag/TiCT复合材料在所有评估中均表现出显著结果,证明了其作为多功能抗菌和光催化材料的潜力。