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稳定核壳型钙钛矿基纳米异质结构的合成。

Synthesis of stable core-shell perovskite based nano-heterostructures.

机构信息

Department of Biomedical Engineering, College of Design and Engineering, National University of Singapore, 117576, Singapore.

School of Environmental and Chemical Engineering, Shanghai University, China.

出版信息

J Colloid Interface Sci. 2022 Dec 15;628(Pt A):121-130. doi: 10.1016/j.jcis.2022.07.127. Epub 2022 Jul 23.

Abstract

Despite having exceptional optical and photoelectric properties, the application of organometal halide perovskites (OHP) is restricted due to the limited penetration depth of the UV excitation light and poor stability. Attempts have been made to make composite materials by mixing other materials such as upconversion nanoparticles (UCNP) with OHP. In contrast to linear absorption and emission of OHP, the nonlinear upconversion of UCNP offers numerous advantages such as deep penetration depth of the near-infrared (NIR) excitation light, minimal photodamage to biological tissues, and negligible background interference, which offer great potential in various applications such as multiplexed optical encoding, three-dimensional displays, super-resolution bioimaging, and effective solar spectrum conversion. However, it is challenging to synthesize hybrid OHP-UCNP nanocrystals due to the inherent difference in crystal structures of hexagonal phase UCNP and cubic phase OHP. In this work, we report OHP-UCNP heterostructured nanocrystals synthesized via growing cubic phase NaGdF UCNP over cubic phase CsPbBr OHP in a seed-mediated process based on a very small lattice mismatch and then converting cubic phase UCNP to hexagonal phase through heating. The juxtaposition of UCNP over OHP in a single nanocrystal facilitates efficient energy transfer from UCNP to OHP under NIR excitation and acts as a protective layer improving the stability. The stability is further enhanced by coating an inert UCNP shell on the OHP-UCNP nano-heterostructures with the same UCNP material earlier used in the heterostructures. The coating demonstrated greater stability under continuous UV exposure and in harsh environments such as high temperatures and polar solvents. These NIR excitable perovskite-UCNP nano-heterostructures with improved stability have great potential for use in new optoelectronic and biological applications.

摘要

尽管具有出色的光学和光电性能,但由于紫外光激发光的穿透深度有限和稳定性差,卤化有机金属钙钛矿(OHP)的应用受到限制。尝试通过将上转换纳米粒子(UCNP)等其他材料与 OHP 混合来制备复合材料。与 OHP 的线性吸收和发射相比,UCNP 的非线性上转换具有许多优势,例如近红外(NIR)激发光的深穿透深度、对生物组织的最小光损伤以及可忽略的背景干扰,这为各种应用提供了巨大的潜力,例如复用光学编码、三维显示、超分辨率生物成像和有效太阳能谱转换。然而,由于六方相 UCNP 和立方相 OHP 晶体结构的固有差异,合成混合 OHP-UCNP 纳米晶具有挑战性。在这项工作中,我们报告了通过在种子介导过程中在立方相 CsPbBr OHP 上生长立方相 NaGdF UCNP 来合成 OHP-UCNP 异质结构纳米晶,该过程基于非常小的晶格失配,然后通过加热将立方相 UCNP 转化为六方相。在单个纳米晶中,UCNP 并置在 OHP 上,促进了在 NIR 激发下从 UCNP 到 OHP 的有效能量转移,并充当保护层,提高了稳定性。通过使用早先用于异质结构中的相同 UCNP 材料在 OHP-UCNP 纳米异质结构上涂覆惰性 UCNP 壳,进一步增强了稳定性。在连续的紫外光照射和高温、极性溶剂等恶劣环境下,涂层表现出更高的稳定性。这些稳定性得到提高的 NIR 可激发钙钛矿-UCNP 纳米异质结构具有在新的光电和生物应用中应用的巨大潜力。

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