Saoud Hussam A Al, Sprynskyy Myroslav, Pashaei Reza, Kawalec Michał, Pomastowski Paweł, Buszewski Bogusław
Faculty of Mechanical Engineering, Department of Materials Engineering and Production, Bialystok University of Technology, Bialystok, Poland.
Department of Environmental Chemistry and Bioanalytics, Faculty of Chemistry, Nicolaus Copernicus University in Torun, Torun, Poland.
J Sep Sci. 2022 Sep;45(17):3362-3376. doi: 10.1002/jssc.202100981. Epub 2022 Jun 10.
Growing research interest in the use of diatomaceous biosilica results from its unique properties such as chemical inertness, biocompatibility, high mechanical and thermal stability, low thermal conductivity, and homogeneous porous structure with a large specific surface. Unlike the production of synthetic silica materials with a micro- or nanoscale structure in an expensive conventional manufacturing process, diatomaceous biosilica can be produced in huge quantities without significant expenditure of energy and materials. This fact makes it an unlimited, easily accessible, natural, inexpensive, and renewable material. Moreover, the production of biosilica is extremely environmental friendly, as there is essentially no toxic waste and the process does not require more energy compared to the production of synthetic silica-based materials. For all these reasons, diatoms are an intriguing alternative to synthetic materials in developing cheap biomaterials used in a different branches of industry. In this review, the state-of-art of biosilica materials, their characteristics approaches, and possible ways of application have been reported.
对硅藻生物二氧化硅应用的研究兴趣与日俱增,这源于其独特的性质,如化学惰性、生物相容性、高机械稳定性和热稳定性、低热导率以及具有大比表面积的均匀多孔结构。与在昂贵的传统制造工艺中生产具有微米或纳米级结构的合成二氧化硅材料不同,硅藻生物二氧化硅可以大量生产,而无需大量的能源和材料消耗。这一事实使其成为一种无限、易于获取、天然、廉价且可再生的材料。此外,生物二氧化硅的生产极其环保,因为基本上没有有毒废物,并且与合成二氧化硅基材料的生产相比,该过程不需要更多的能源。出于所有这些原因,硅藻是开发用于不同工业领域的廉价生物材料时合成材料的一个有趣替代品。在这篇综述中,报道了生物二氧化硅材料的最新进展、其特性方法以及可能的应用方式。