Zou Rui, Lin Yanjun, Lu Chao
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Anal Chem. 2021 Feb 2;93(4):2678-2686. doi: 10.1021/acs.analchem.0c05027. Epub 2021 Jan 18.
As an attractive electrochemiluminescence (ECL) emitter, graphitic carbon nitride (CN) still suffers from weak and unstable ECL signals for its poor conductivity and the occurrence of electrode passivation. In this study, a simple nitrogen vacancy (NV) engineering strategy has been developed for the improvement of ECL performances (intensity and stability) for the first time. In comparison to pristine CN (RSD = 51.98% for 10 continuous scan), ca. 60 times amplification in ECL intensity and 70 times enhancement in ECL efficiency for CN modified with NVs (CN-NVs) were obtained. In addition, more stable ECL emissions (RSD = 0.53%) were achieved for CN-NV-550 by thermal treatment of pristine CN in a N atmosphere for another 2 h at 550 °C. The mechanism study for the vital role of NVs on the ECL of CN-NVs revealed that NVs can not only facilitate electron transfer to amplify the ECL intensity but also serve as the electron trap to inhibit electrode passivation. More interestingly, a series of CN-NVs exhibited a tunable ECL wavelength range from 470 to 516 nm with different NV contents. Moreover, their ECL spectra showed an obvious red-shift of the wavelength with their corresponding fluorescence spectra. These findings confirmed that the ECL emissions of CN-NVs were susceptible to the relevant surface states of NVs. Our work may open up a promising pathway for improving ECL performances of CN and create new possibilities for multitarget simultaneous detection based on ECL and construction of color tunable light-emitting devices.
作为一种有吸引力的电化学发光(ECL)发射体,石墨相氮化碳(CN)因其导电性差和电极钝化现象而仍存在ECL信号微弱且不稳定的问题。在本研究中,首次开发了一种简单的氮空位(NV)工程策略来改善ECL性能(强度和稳定性)。与原始CN相比(连续10次扫描的相对标准偏差(RSD)=51.98%),用NV修饰的CN(CN-NVs)的ECL强度提高了约60倍,ECL效率提高了70倍。此外,通过在550℃的N气氛中对原始CN再进行2小时的热处理,得到了更稳定的ECL发射(RSD = 0.53%),即CN-NV-550。对NVs在CN-NVs的ECL中所起关键作用的机理研究表明,NVs不仅可以促进电子转移以放大ECL强度,还可以作为电子陷阱来抑制电极钝化。更有趣的是,一系列CN-NVs随着NV含量的不同表现出从470到516 nm的可调ECL波长范围。此外,它们的ECL光谱与相应的荧光光谱相比显示出明显的波长红移。这些发现证实了CN-NVs的ECL发射对NVs的相关表面状态敏感。我们的工作可能为改善CN的ECL性能开辟一条有前景的途径,并为基于ECL的多目标同时检测以及颜色可调发光器件的构建创造新的可能性。