Kydyrbay Nazerke, Zhazitov Mergen, Abdullah Muhammad, Duisebayev Tolagay, Tezekbay Yerbolat, Aldongarov Anuar, Karibayev Mirat, Nuraje Nurxat, Toktarbaiuly Olzat
Renewable Energy Laboratory, National Laboratory Astana (NLA), Nazarbayev University, Astana, 010000, Kazakhstan.
Department of Technical Physics, L.N. Gumilyov Eurasian National University, Astana, 010000, Kazakhstan.
Sci Rep. 2025 Jul 7;15(1):24329. doi: 10.1038/s41598-025-10027-9.
Nanodiamonds (NDs) have received much attention in science and technology due to their superior structural and functional characteristics. In this study, NDs were successfully functionalized with Triethoxy(octyl)silane (TREOS) to make them superhydrophobic. Surface functionalization was carried out through hydrolysis and condensation reactions to create stable Si-O-C and Si-O-Si bonds. Characterization techniques like Raman spectroscopy, XRD, SEM, FTIR, and water contact angle measurements confirmed the structural integrity and efficient functionalization of the functionalized NDs. The observed superhydrophobicity with a 151° contact angle is understandable based on both silane functionalization and nanoscale surface roughness. These observations suggest the prospects of TREOS-modified NDs for use in waterproof coatings, self-cleaning surfaces, and anti-corrosion materials. Furthermore, the excellent dispersion of hydrophobic NDs in nonpolar solvents reveals that they can be applied in lubrication and anti-wear. Future efforts would be the further improvement of ND surface modification and its application in practical products, e.g., protective coatings, biomedical devices, and high-performance nanocomposites.
纳米金刚石(NDs)因其卓越的结构和功能特性而在科学技术领域备受关注。在本研究中,纳米金刚石成功地用三乙氧基(辛基)硅烷(TREOS)进行了功能化处理,使其具有超疏水性。表面功能化通过水解和缩合反应进行,以形成稳定的Si-O-C和Si-O-Si键。拉曼光谱、X射线衍射、扫描电子显微镜、傅里叶变换红外光谱以及水接触角测量等表征技术证实了功能化纳米金刚石的结构完整性和有效的功能化。基于硅烷功能化和纳米级表面粗糙度,观察到的151°接触角的超疏水性是可以理解的。这些观察结果表明,经TREOS改性的纳米金刚石在防水涂层、自清洁表面和防腐材料方面具有应用前景。此外,疏水性纳米金刚石在非极性溶剂中的优异分散性表明它们可应用于润滑和抗磨损。未来的工作将是进一步改进纳米金刚石的表面改性及其在实际产品中的应用,例如防护涂层、生物医学设备和高性能纳米复合材料。