无定形碳酸钙
文石
方解石
生物矿化
无定形固体
拉曼光谱
碳酸钙
显微镜
材料科学
碳酸盐
化学成像
矿物学
化学工程
纳米技术
化学
结晶学
地质学
光学
复合材料
物理
工程类
高光谱成像
冶金
遥感
作者
Hamadou Dicko,Tilman A. Grünewald,Patrick Ferrand,Jeremie Vidal‐Dupiol,Vaihiti Teaniniuraitemoana,Manaari Sham Koua,Gilles Le Moullac,Jérémy Le Luyer,Denis Saulnier,Virginie Chamard,Julien Duboisset
标识
DOI:10.1016/j.jsb.2022.107909
摘要
In living organisms, calcium carbonate biomineralization combines complex bio-controlled physical and chemical processes to produce crystalline hierarchical hard tissues (usually calcite or aragonite) typically from an amorphous precursor phase. Understanding the nature of the successive transient amorphous phases potentially involved in the amorphous-to-crystalline transition requires characterization tools, which are able to provide a spatial and spectroscopic analysis of the biomineral structure. In this work, we present a highly sensitive coherent Raman microscopy approach, which allows one to image molecular bond concentrations in post mortem shells and living animals, by exploiting the vibrational signature of the different carbonates compounds. To this end, we target the ν1 calcium carbonate vibration mode and produce spatially and spectroscopically resolved images of the shell border of a mollusk shell, the Pinctada margaritifera pearl oyster. A novel approach is further presented to efficiently compare the amount of amorphous carbonate with respect to its crystalline counterpart. Finally, the whole microscopy method is used to image in vivo the shell border and demonstrate the feasibility and the reproducibility of the technique. These findings open chemical imaging perspectives for the study of biogenic and bio-inspired crystals.
科研通智能强力驱动
Strongly Powered by AbleSci AI