Tong Yu, Yao En-Ping, Manzi Aurora, Bladt Eva, Wang Kun, Döblinger Markus, Bals Sara, Müller-Buschbaum Peter, Urban Alexander S, Polavarapu Lakshminarayana, Feldmann Jochen
Chair for Photonics and Optoelectronics, Department of Physics and Center for NanoScience (CeNS), Ludwig-Maximilians-Universität München, Amalienstr. 54, 80799, Munich, Germany.
Nanosystems Initiative Munich (NIM), Schellingstr. 4, 80799, Munich, Germany.
Adv Mater. 2018 Jun 5:e1801117. doi: 10.1002/adma.201801117.
Self-assembly of nanoscale building blocks into ordered nanoarchitectures has emerged as a simple and powerful approach for tailoring the nanoscale properties and the opportunities of using these properties for the development of novel optoelectronic nanodevices. Here, the one-pot synthesis of CsPbBr perovskite supercrystals (SCs) in a colloidal dispersion by ultrasonication is reported. The growth of the SCs occurs through the spontaneous self-assembly of individual nanocrystals (NCs), which form in highly concentrated solutions of precursor powders. The SCs retain the high photoluminescence (PL) efficiency of their NC subunits, however also exhibit a redshifted emission wavelength compared to that of the individual nanocubes due to interparticle electronic coupling. This redshift makes the SCs pure green emitters with PL maxima at ≈530-535 nm, while the individual nanocubes emit a cyan-green color (≈512 nm). The SCs can be used as an emissive layer in the fabrication of pure green light-emitting devices on rigid or flexible substrates. Moreover, the PL emission color is tunable across the visible range by employing a well-established halide ion exchange reaction on the obtained CsPbBr SCs. These results highlight the promise of perovskite SCs for light emitting applications, while providing insight into their collective optical properties.
将纳米级构建块自组装成有序的纳米结构,已成为一种简单而强大的方法,可用于定制纳米级特性,以及利用这些特性开发新型光电子纳米器件。在此,报道了通过超声处理在胶体分散体中一锅合成CsPbBr钙钛矿超晶体(SCs)。SCs的生长是通过单个纳米晶体(NCs)的自发自组装实现的,这些纳米晶体在前体粉末的高浓度溶液中形成。SCs保留了其NC亚基的高光致发光(PL)效率,但由于粒子间电子耦合,与单个纳米立方体相比,其发射波长也出现了红移。这种红移使SCs成为纯绿色发光体,PL最大值在≈530 - 535nm,而单个纳米立方体发出蓝绿色(≈512nm)。SCs可作为发射层,用于在刚性或柔性基板上制造纯绿色发光器件。此外,通过对所得CsPbBr SCs采用成熟的卤离子交换反应,PL发射颜色可在可见光范围内进行调节。这些结果突出了钙钛矿SCs在发光应用方面的前景,同时也为其集体光学性质提供了深入了解。