论文标题

一种纳米木符号工程的光纤等离激元界面,用于敏感性增强的生物传感器

A nanodiamonds-engineered optical-fiber plasmonic interface for sensitivity-enhanced biosensing

论文作者

Chen, Yaofei, Xiao, Lu, Ni, Longqun, Chen, Lei, Liu, Gui-shi, Yin, Jinde, Zhao, Peili, Luo, Yunhan, Chen, Zhe

论文摘要

受益于优秀特征,例如低细胞毒性,功能化多功能性和可调荧光,纳米座(NDS)在生物医学领域显示出巨大的应用电位。据我们所知,我们在本文中首次提出,使用滴剂量铸造方法将NDS整合在侧面涂层纤维上的等离子界面上。添加的NDS工程师的等离子界面旨在改善感应场,从而提高了灵敏度,此外,这显着取决于滴量铸造循环的数量(DC)和NDS色散溶液的使用浓度。实验结果表明,正确增加NDS色散浓度有益于获得更高的灵敏度,同时使用较少数量的DC,但是过度浓度极大地恶化了共振下降。在实验上,使用最佳的0.2 mg/ml浓度和3个DC,我们达到了3582 nm/riU的最高RI敏感性,与没有NDS修改的情况相比,它显示出73.8%的增强。通过使用牛血清白蛋白作为演示,也证明了生物传感的敏感性增强。通过特征和模拟探索了背后机制。这项工作为NDS打开了一个新的应用程序表,即将ND与等离子界面集成到高性能生物传感。

Benefitting from the excellent characteristics such as low cytotoxicity, functionalization versatility, and tunable fluorescence, nanodiamonds (NDs) have shown enormous application potentials in the biomedical field. Herein, we proposed, for the first time to our best knowledge, to integrate NDs on a plasmonic interface constructed on a side-polished fiber using drop-casting method. The added NDs engineers the plasmonic interface towards improving the sensing field, thus enhancing the sensitivity, which, moreover, is significantly dependent on the number of drop-casting cycles (DCs) and the used concentration of NDs dispersion solution. Experimental results suggest that properly increasing the NDs dispersion concentration is beneficial to obtain a higher sensitivity while using a fewer number of DCs, but the excessive concentration extremely deteriorates the resonance dip. Experimentally, using the optimal 0.2 mg/mL concentration and 3 DCs, we achieve the highest RI sensitivity of 3582 nm/RIU, which shows an enhancement of 73.8% compared to the case without NDs modification. The sensitivity enhancement in biosensing is also proved by employing bovine serum albumin as a demo. The behind mechanism is explored via characterizations and simulations. This work opens up a new application form for NDs, i.e. integrating NDs with a plasmonic interface towards high-performance biosensing.

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