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首页> 外文期刊>Electrochimica Acta >Enhancing aqueous stability and radiative-charge-transfer efficiency of CsPbBr3 perovskite nanocrystals via conductive silica gel coating
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Enhancing aqueous stability and radiative-charge-transfer efficiency of CsPbBr3 perovskite nanocrystals via conductive silica gel coating

机译:通过导电硅胶涂层提高CSPBBR3钙钛矿纳米晶体的稳定性和辐射电荷 - 转移效率

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摘要

The poor aqueous stability of perovskite nanocrystals (NCs) limits their electrochemical applications. Herein, we reported a waterproof and conductive silica gel shell encapsulating CsPbBr3 NCs, enhancing its aqueous stability and radiative-charge-transfer efficiency. Upon introducing small volume of CsBr aqueous solution in hexane containing tetramethoxysilane (TMOS) and Cs4PbBr6 NCs, the conversion reaction of Cs4PbBr6 -> CsPbBr3+3CsBr was triggered to form Cs4PbBr6@CsPbBr3@silica gel (CsBr) hybrid. The silica gel shell can block the contact between CsPbBr3 NCs and bulk aqueous phase. The CsBr enclosed in the silica gel can reduce the conversion rate and increase dramatically the electrical conductivity of the silica gel. The electrochemiluminescence (ECL) of CsPbBr3 NCs in aqueous phase was enhanced greatly. The strong ECL of CsPbBr3 NCs in the hybrid was still observed after stored in CsBr solution for 30 day. The as-obtained perovskite hybrid displays improved electrochemical charge-injecting performance and radiative-charge-transfer in ECL. Annihilation ECL demonstrates that all the electrons injected onto the perovskite hybrid can recombine with the holes injected onto it for light-emitting. Both annihilation and co-reactant ECL, as well as photoluminescence reveal that encapsulating CsPbBr3 NCs into a conductive and waterproof silica gel shell is favorable to enhance aqueous performance of perovskite NCs with negligible effects on their excited states. The ECL of the core-shell perovskite hybrid was applied to detect dopamine in the concentration range of 0.01-10 mu m, with the limit of detection of 3 nM. (C) 2019 Elsevier Ltd. All rights reserved.
机译:钙钛矿纳米晶体(NCS)的差的水性稳定性限制了其电化学应用。在此,我们报道了一种防水和导电硅胶壳包封CSPBBR3 NC,增强其水性稳定性和辐射电荷转移效率。在含有四甲氧基硅烷(TMOS)和CS4PBBR6 NC的己烷中的小体积的CSBR水溶液后,触发CS4PBBR6 - > CSPBBR3 + 3CSBR的转化反应,形成CS4PBBR6 @ CSPBBR3 @硅胶(CSBR)杂种。硅胶壳可以阻断CSPBBR3 NCS和散装水相之间的接触。硅胶中封闭的CSBR可以降低转化率并急剧增加硅胶的导电率。大大提高了水相中CSPBBR3 NCS的电化学升(ECL)。在储存在CSBR溶液中仍然观察到杂种中的CSPBBR3 NCS的强ECL 30天。 AS获得的钙钛矿混合动力器显示出改善的电化学电荷注入性能和ECL中的辐射电荷转移。湮灭ECL表明,注入到钙钛矿混合物上的所有电子都可以通过注入到其发光的孔重新组合。湮灭和共反应物ECL,以及光致发光揭示将CSPBBR3 NC封装成导电和防水硅胶壳,有利的是增强钙钛矿NC的水性性能,对其激发态的影响可忽略不计。核 - 壳钙酸盐杂交物的ECL用于检测0.01-10μm浓度范围内的多巴胺,其检测限为3nm。 (c)2019 Elsevier Ltd.保留所有权利。

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