Colgate-Palmolive Technology Center, 909 River Road, Piscataway, NJ, 08844, USA.
Department of Mechanical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
Sci Rep. 2022 Feb 11;12(1):2369. doi: 10.1038/s41598-022-06271-y.
Scanning Electron Microscope/Focused Ion Beam (SEM/FIB) system has become valuable and popular tool for the analysis of biological materials such as dentine structures. According to physiological and anatomical studies, dentine structures are a complicated system containing collagen fibers, nanocrystalline hydroxyapatite, and numerous networks of tubular pores. During a routine FIB milling process, collagen fibers and other organic structures are vaporized, which increases the number of pores on the milled surface of the dentine. This causes the final cross-section to be more porous than the pristine sample. Unfortunately, little attention has been paid to the collagen fiber loss and how to preserve them during a FIB milling process. In this work, we present a novel and simple approach to preserve the organic portions of the dentine structure through metal staining. By using this method, the porosity of the dentine structure after the FIB milling process is significantly reduced similar to the pristine sample. This indicates that the organic portion of the dentine structure is well protected by the metal staining. This approach enables the SEM/FIB system to generate super-high quality SEM images with less ion beam damage; and the SEM images can better reflect the original condition of the dentine structure. Further, serial energy-dispersive X-ray spectroscopy (EDS) mapping of the stained dentine structure is achieved without an additional metal coating; and three-dimensional (3-D) elemental mapping of an occluded dentine is achieved with a significantly reduced data acquisition time.
扫描电子显微镜/聚焦离子束(SEM/FIB)系统已成为分析牙本质结构等生物材料的有价值且流行的工具。根据生理和解剖学研究,牙本质结构是一个复杂的系统,包含胶原纤维、纳米级羟基磷灰石和众多管状孔隙网络。在常规的 FIB 铣削过程中,胶原纤维和其他有机结构被蒸发,这会增加牙本质铣削表面上的孔隙数量。这导致最终的横截面比原始样品更具多孔性。不幸的是,人们很少关注胶原纤维的损失以及如何在 FIB 铣削过程中保存它们。在这项工作中,我们提出了一种新颖而简单的方法,通过金属染色来保存牙本质结构的有机部分。通过使用这种方法,FIB 铣削后牙本质结构的孔隙率显著降低,类似于原始样品。这表明牙本质结构的有机部分通过金属染色得到了很好的保护。这种方法使 SEM/FIB 系统能够生成具有更少离子束损伤的超高质量 SEM 图像;并且 SEM 图像可以更好地反映牙本质结构的原始状态。此外,无需额外的金属涂层即可对染色的牙本质结构进行连续的能量色散 X 射线光谱(EDS)映射;并且可以在大大减少数据采集时间的情况下实现闭塞牙本质的三维(3-D)元素映射。