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Synthesis, mechanistic investigation, and application of photoluminescent sulfur and nitrogen co-doped carbon dots

机译:光致发光硫氮共掺杂碳点的合成,机理研究及应用

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Heteroatom doped carbon dots (CDs) with consummate photoluminescence quantum yield (PLQY) are of great interest in various applications such as trace element detection, biomolecule markers, and chemical sensing. However, due to the low doping efficiency of the reaction, a high precursor ratio is routinely used to obtain CDs with considerable photoluminescence quantum yield (PLQY). In this contribution, we report a single-step hydrothermal method having the highest doping efficiency to synthesize sulfur and nitrogen co-doped semi-crystalline carbon dots (S,N-CDs) with superior quantum yield (QY). Here, the unprecedented doping efficiency of the reaction enables an order of magnitude reduction in the starting precursor ratio, in comparison with previous reports. Moreover, for the first time, complementary theoretical and comprehensive spectroscopic techniques were employed to derive deep insight into the photoluminescence mechanism and the shifting of specific energy levels in doped CDs was identified as the reason behind the enhanced photoluminescence of doped CDs. The PLQY and luminescent characteristics of the S, N-CDs can be tuned by controlling the precursor molar ratio, the extent of surface oxidation, and chemical status of S in the CDs. While most methods report high PLQY for amorphous CDs, our technique produces semi-crystalline CDs with more than 55% QY. Another unique attribute of the S, N-CDs is the high monodispersity and defined surface chemistry and the resultant highly robust excitation-independent luminescence that is stable over a broad range of pH values and in an extremely reactive environment. The detailed structural and chemical investigations using spectroscopic and microscopic techniques combining molecular simulation revealed that the superior PLQY and luminescence of S, N-CDs are due to the heteroatom directed, oxidized carbon-based surface passivation. The remarkable, robust fluorescence properties of S, N-CDs were applied for the ultra-trace detection of Hg2+ with a detection limit of 100 pM. The novel insights into the photoluminescence of doped CDs, the robust luminescence, and enhanced doping reaction efficiency reported here are envisaged to drive transformative changes in the design of CDs with peerless properties for futuristic applications.
机译:具有完善的光致发光量子产率(PLQY)的杂原子掺杂碳点(CD)在各种应用中引起了极大的兴趣,例如痕量元素检测,生物分子标记和化学传感。然而,由于反应的低掺杂效率,通常使用高前体比例来获得具有相当大的光致发光量子产率(PLQY)的CD。在这项贡献中,我们报告了一种具有最高掺杂效率的单步水热法,可以合成具有优异量子产率(QY)的硫和氮共掺杂半结晶碳点(S,N-CDs)。在此,与以前的报道相比,反应的空前的掺杂效率使得起始前体比率降低了一个数量级。此外,首次采用互补的理论和综合光谱技术来深入了解光致发光机理,并且将掺杂CD中比能级的变化确定为掺杂CD增强光致发光的原因。可以通过控制CD中S的前体摩尔比,表面氧化程度和S的化学状态来调节S,N-CD的PLQY和发光特性。虽然大多数方法都报告了非晶CD的PLQY高,但是我们的技术生产的QY超过55%的半结晶CD。 S,N-CD的另一个独特属性是高单分散性和确定的表面化学性质,以及由此产生的高度稳定的与激发无关的发光,该发光在广泛的pH值范围内和极度反应性的环境中都稳定。使用光谱和显微镜技术结合分子模拟进行的详细结构和化学研究表明,优异的PLQY和S,N-CD的发光归因于杂原子定向的氧化碳基表面钝化。 S,N-CD出色而强大的荧光特性可用于Hg2 +的超痕量检测,检测限为100 pM。设想对此处报道的掺杂CD的光致发光,鲁棒的发光和增强的掺杂反应效率有新颖的见解,以推动具有无与伦比特性的CD设计在未来应用中的变革性变化。

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