Department of Chemistry and ‡Department of Macromolecular Science, Fudan University , Shanghai 200433, P. R. China.
ACS Nano. 2013 Dec 23;7(12):10978-84. doi: 10.1021/nn404566b. Epub 2013 Nov 22.
The ability to remove long, insulating ligands from nanocrystal (NC) surfaces without deteriorating the structural integrity of NC films is critical to realizing their electronic and optoelectronic applications. Here we report a nondestructive ligand-exchange approach based on in situ chemical treatment of NCs floating at the liquid-air interface, enabling strongly coupled NC superlattice films that can be directly transferred to arbitrary substrates for device applications. Ligand-exchange-induced structural defects such as cracks and degraded NC ordering that are commonly observed using previous methods are largely prevented by performing ligand exchange at the liquid-air interface. The significantly reduced interparticle spacing arising from ligand replacement leads to highly conductive NC superlattice films, the electrical conductivities and carrier mobilities of which are 1 order of magnitude higher than those of the same NC films subject to substrate-supported exchange using previously reported procedures. The in situ, free-floating exchange approach presented here opens the door for electronically coupled NC superlattices that hold great promise for high-performance, flexible electronic and optoelectronic devices.
将长的、绝缘配体从纳米晶体(NC)表面去除,而不破坏 NC 薄膜的结构完整性,对于实现其电子和光电应用至关重要。在这里,我们报告了一种基于在液体-空气界面上漂浮的 NC 原位化学处理的非破坏性配体交换方法,从而实现了强耦合的 NC 超晶格薄膜,可以直接转移到任意基底上用于器件应用。通过在液体-空气界面上进行配体交换,可以很大程度上防止使用先前方法时常见的配体交换诱导的结构缺陷,如裂纹和 NC 有序性降低。配体取代导致的颗粒间间距显著减小,导致 NC 超晶格薄膜具有高导电性,其电导率和载流子迁移率比采用先前报道的基底支撑交换方法的相同 NC 薄膜高 1 个数量级。这里提出的原位、自由浮动交换方法为电子耦合 NC 超晶格开辟了道路,这些超晶格在高性能、柔性电子和光电设备方面具有广阔的应用前景。