纤维
生物矿化
胶原纤维
材料科学
矿化(土壤科学)
纳米技术
纳米晶
生物物理学
化学工程
化学
生物化学
生物
工程类
有机化学
氮气
作者
Zhuozhi Zheng,Minghao Jiang,Ziyu Lv,Ying Liu,Huanhuan Zhang,Weijian Fang,Hao Xie,Hao Wang,Weimin Wang,Hang Ping,Bin Li,Zhengyi Fu
出处
期刊:Small
[Wiley]
日期:2025-02-10
卷期号:21 (11): e2410205-e2410205
被引量:2
标识
DOI:10.1002/smll.202410205
摘要
Abstract Owing to the unique assembly of collagen molecules, collagen fibrils have a confined structure that can effectively guide the intrafibrillar‐oriented growth of inorganic crystals, such as hydroxyapatite and calcium carbonate. However, utilizing this organized structure of mineralized collagen fibrils for rapid ion transport remains challenging. Herein, the oriented growth of functional cadmium carbonate (CdCO 3 ) nanocrystals is reported within collagen fibrils and demonstrates that different areas within a single mineralized collagen fibril exhibit a uniform orientation. The results show that the precursor phase infiltrates the collagen through the gap zones owing to collagen confinement, gradually transforming into well‐oriented crystalline nanocrystals within the collagen. Adopting the principles of intrafibrillar mineralization with CdCO 3 , the mineralization process of collagen matrices can be regulated, such as collagen films and tendon slices, by adjusting the mineralization temperature, thereby modulating the stress generated in the collagen matrices, thus highlighting new possibilities for using organized biominerals in rapid ion transport. Additionally, the use of mineralized collagen fibrils are demonstrated in biological memristors. The fabricated memristor device exhibits a low set voltage (0.65 V) and high on/off ratio (≈10 6 ), highlighting the potential of mineralized collagen in advanced electronic applications.
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