4.6 Article

Sericin-Based Bio-Inspired Nano-Engineering of Heterometallic AgAu Nanocubes for Attomolar Mefenamic Acid Sensing in the Mobile Phone-Based Surface Plasmon-Coupled Interface

期刊

LANGMUIR
卷 38, 期 39, 页码 12035-12049

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.2c01894

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资金

  1. Tata Education and Development Trust [TEDT/MUM/HEA/SSSIHL/2017-2018/0069-RM-db]
  2. Prasanthi Trust, Inc., USA
  3. DST-Technology Development Program [IDP/MED/19/2016]
  4. Life Sciences Research Board (LSRB)
  5. DRDO-Defense Research and Development Organization [O/o DG/81/48222/LSRB-337/BTB/2018]
  6. DST-Inspire Research Fellowship [IF180392]
  7. Center for Incubation Innovation Research and Consultancy
  8. NanoStructured Materials (NSM) Group, Department of Chemistry, Indian Institute of Technology Bombay
  9. SSSIHL-Central Research Instruments Facility (CRIF)
  10. Guidance from Bhagawan Sri Sathya Sai Baba

向作者/读者索取更多资源

Engineering photo-plasmonic platforms with heterometallic nanohybrids using bio-inspired methods is crucial for achieving enhanced sensitivity in fluorescence-based analytical detection. Our study presents a rational design for in situ fabrication of silver, gold, and their plasmonic hybrids using biocompatible sericin protein. The resulting nanohybrids showed tunable and amplified fluorescence emission when interfaced with the SPCE platform, demonstrating their potential for biosensing applications.
Engineering photo-plasmonic platforms with heterometallic nanohybrids are of paramount significance for realizing augmented sensitivity in fluorescence-based analytical detection. Although myriad nanomaterials with versatile functionalities have been explored in this regard in the surface plasmon-coupled emission (SPCE) interface, light harvesting using nano-antennas synthesized via sustainable bio-inspired routes still remains a high priority in current research. Our study provides a rational design for in situ fabrication of nanoparticles of silver, gold, and their plasmonic hybrids using biocompatible, non-hazardous sericin protein (obtained Bombyx mori) as the reducing and capping agent. The one-pot, user-eco-friendly technology demonstrated here utilizes UV irradiation to promote the photo-induced electron transfer mechanism, thereby yielding nanomaterials of tunable optoelectronic functionalities. The resulting homometallic and heterometallic nanohybrids with robust localized surface plasmon resonances (LSPR) showed strong light-confining attributes when interfaced with the propagating surface plasmon polaritons (SPPs) of the SPCE platform, thereby yielding tunable, highly directional, polarized, and amplified fluorescence emission. The experimentally obtained emission profiles displayed an excellent correlation with the theoretically obtained dispersion diagrams validating the spectro-plasmonic results. The abundant hotspots from AgAu nanocubes presented in excess of 1300-fold dequenched fluorescence enhancement and were utilized for cost-effective and real-time mobile phone-based sensing of biologically relevant mefenamic acid at an attomolar limit of detection. We believe that this superior biosensing performance accomplished using the frugal bioinspired nano-engineering at hybrid interfaces would open new doors for developing nanofabrication protocols with the quintessential awareness of the principles of green nanotechnology, consequently eliminating hazardous chemicals and solvents in the development of point-of-care diagnostic tools.

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