Hu Xiaoge, Cheng Wenlong, Wang Tie, Wang Erkang, Dong Shaojun
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, People's Republic of China. Graduate School of the Chinese Academy of Sciences, Beijing, 100039, People's Republic of China.
Nanotechnology. 2005 Oct;16(10):2164-9. doi: 10.1088/0957-4484/16/10/032. Epub 2005 Aug 16.
In this study, it is found that as-prepared gold nanorods can be linked to each other in an end-to-end way by using cysteine as a molecular bridge. Both transmission electron microscopy and UV-visible optical spectroscopy demonstrated the uniaxial assembly of the gold nanorods. The controlled addition of cysteine into the gold nanorod solution resulted in their preferential binding to the two ends of the gold nanorods. As a result, end-to-end assembly was achieved through cooperative hydrogen bonding of bound cysteine molecules. The as-synthesized end-to-end linked assembly of gold nanorods is well ordered and on a large scale. For comparison, three other neutral amino acids, glycine, alanine and valine, were also investigated but the orderliness of their assembly is not as good as that in the case of cysteine.
在本研究中,发现通过使用半胱氨酸作为分子桥,所制备的金纳米棒可以端对端地相互连接。透射电子显微镜和紫外可见光谱均证实了金纳米棒的单轴组装。向金纳米棒溶液中控制性地添加半胱氨酸,导致其优先结合到金纳米棒的两端。结果,通过结合的半胱氨酸分子的协同氢键作用实现了端对端组装。所合成的金纳米棒端对端连接组装是大规模且有序的。作为对比,还研究了其他三种中性氨基酸,即甘氨酸、丙氨酸和缬氨酸,但它们组装的有序性不如半胱氨酸的情况。