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原子精确金属簇的分级组装作为一种发光应变传感器

Hierarchical Assembly of Atomically Precise Metal Clusters as a Luminescent Strain Sensor.

作者信息

Ghosh Debasmita, Ganayee Mohd Azhardin, Som Anirban, Srikrishnarka Pillalamarri, Murali Nidhi, Bose Sandeep, Chakraborty Amrita, Mondal Biswajit, Ghosh Pijush, Pradeep Thalappil

机构信息

DST Unit of Nanoscience (DST UNS) and Thematic Unit of Excellence, Department of Chemistry, Indian Institute of Technology Madras, Chennai 600036, India.

Department of Applied Mechanics, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6496-6504. doi: 10.1021/acsami.0c19239. Epub 2021 Jan 29.

Abstract

We demonstrate the formation of a versatile luminescent organo-inorganic layered hybrid material, composed of bovine serum albumin (BSA)-protected Au clusters and aminoclay sheets. X-ray diffraction revealed the intercalation of Au@BSA in the layered superstructure of aminoclay sheets. Coulombic attraction of the clusters and the clay initiates the interaction, and the appropriate size of the clusters allowed them to intercalate within the lamellar aminoclay galleries. Electron microscopy measurements confirmed the hierarchical structure of the material and also showed the cluster-attached clay sheets. Zeta potential measurement and dynamic light scattering probed the gradual formation of the ordered aggregates in solution. The hybrid material could be stretched up to 300% without fracture. The emergence of a new peak in the luminescence spectrum was observed during the course of mechanical stretching. This peak increased in intensity gradually with the degree of elongation or strain of the material. A mechanochromic luminescence response was further demonstrated with a writing experiment on a luminescent mat of the material, made by electrospinning.

摘要

我们展示了一种多功能发光有机-无机层状杂化材料的形成,该材料由牛血清白蛋白(BSA)保护的金簇和氨基粘土片组成。X射线衍射显示Au@BSA插入到氨基粘土片的层状超结构中。簇与粘土之间的库仑引力引发了相互作用,并且簇的适当尺寸使其能够插入层状氨基粘土的层间。电子显微镜测量证实了该材料的分级结构,并且还显示了附着有簇的粘土片。zeta电位测量和动态光散射探测了溶液中有序聚集体的逐渐形成。该杂化材料可以拉伸至300%而不破裂。在机械拉伸过程中,观察到发光光谱中出现了一个新峰。随着材料伸长或应变程度的增加,这个峰的强度逐渐增加。通过在由静电纺丝制成的该材料的发光垫上进行书写实验,进一步证明了机械变色发光响应。

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