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三种淡水蜗牛外壳的微观结构分析及其化学与力学特性研究

Microstructure Analysis and Chemical and Mechanical Characterization of the Shells of Three Freshwater Snails.

作者信息

Parveen Saida, Chakraborty Anupam, Chanda Dipak Kr, Pramanik Soujita, Barik Anandamay, Aditya Gautam

机构信息

Department of Zoology, The University of Burdwan, Golapbag, Burdwan 713104, India.

Department of Zoology, University of Calcutta, 35 Ballygunge Circular Road, Kolkata 700019, India.

出版信息

ACS Omega. 2020 Sep 30;5(40):25757-25771. doi: 10.1021/acsomega.0c03064. eCollection 2020 Oct 13.

Abstract

The shells of freshwater snails are discarded as waste, which qualify as biological materials with prospective multiple uses. To substantiate this proposition, an attempt was made to elucidate the physical and chemical properties of the shells of three freshwater snails, namely, , , and . The shells were prepared for electron microscopy and assessment of the calcium carbonate content, apart from the Fourier-transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), energy-dispersive X-ray spectroscopy (EDS), and nanoindentation studies. The results indicated that the calcium carbonate content () of the shells ranged between 87 and 96% of the total weight () and complied with a power regression equation: = 0.801 ; = 0.994; = +0.998; < 0.001. Observations through SEM depicted different snail species-specific arrangement patterns of calcium carbonate crystals in the diverse layers of shells. The XRD, FTIR, and EDS observations revealed the dominance of the aragonite form of the calcium carbonate crystal in the microstructures of each snail shell with the occurrence of different shell surface functional groups. The Brunauer-Emmett-Teller analysis elucidated the surface textures of shell dust taken from each snail species; in addition, the nanohardness properties indicate the shells as a tough biocomposite exoskeleton. Species-specific variations in the shell morphology, microstructure, and calcium carbonate content were prominent for the three freshwater snails considered for the study. Nonetheless, the physical and chemical properties substantiate that the shells of , , and qualify as biological materials for sustainable use in various fields including bioremediation, biocatalyst, biomedical applications, and a source of lime. Since the shells of the freshwater snails are discarded as aquaculture waste, subsequent use as a biological material will support the "waste made useful" paradigm in sustainability, both from ecological and economic perspectives.

摘要

淡水蜗牛的壳被当作废物丢弃,而这些壳可被视为具有潜在多种用途的生物材料。为了证实这一观点,我们尝试阐明三种淡水蜗牛的壳的物理和化学性质,这三种蜗牛分别是 、 和 。除了进行傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)、能量色散X射线光谱(EDS)和纳米压痕研究外,还对这些壳进行了电子显微镜制备以及碳酸钙含量评估。结果表明,壳中的碳酸钙含量( )占总重量( )的87%至96%,并符合幂回归方程: = 0.801 ; = 0.994; = +0.998; < 0.001。通过扫描电子显微镜(SEM)观察发现,不同种类蜗牛壳的不同层中碳酸钙晶体呈现出特定的排列模式。XRD、FTIR和EDS观察结果显示,在每种蜗牛壳的微观结构中,文石形式的碳酸钙晶体占主导地位,同时还存在不同的壳表面官能团。布鲁瑙尔-埃米特-泰勒(Brunauer-Emmett-Teller)分析阐明了取自每种蜗牛种类的壳粉的表面纹理;此外,纳米硬度特性表明这些壳是一种坚韧的生物复合外骨骼。对于本研究中所考虑的三种淡水蜗牛,壳的形态、微观结构和碳酸钙含量存在明显的物种特异性差异。尽管如此,其物理和化学性质证实, 、 和 的壳可作为生物材料在包括生物修复、生物催化剂、生物医学应用以及石灰来源等各个领域可持续利用。由于淡水蜗牛的壳作为水产养殖废物被丢弃,将其后续用作生物材料无论从生态还是经济角度都将支持可持续发展中的“变废为宝”模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f84/7557267/cfbd7776b39c/ao0c03064_0002.jpg

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