Literature DB >> 31914727

Quantitative Understanding of Charge-Transfer-Mediated Fe3+ Sensing and Fast Photoresponse by N-Doped Graphene Quantum Dots Decorated on Plasmonic Au Nanoparticles.

Ruma Das1, Hiroshi Sugimoto2, Minoru Fujii2, P K Giri1,3.   

Abstract

The formation of a heterostructure with plasmonic nanoparticles drastically alters the optoelectronic properties of graphene quantum dots (GQDs), resulting in exceptional properties. In the present work, we prepare nitrogen-doped GQDs decorated on gold nanoparticles (Au@N-GQDs) by a one-step green reduction method and study its extraordinary fluorescence and photoresponse characteristics. The as-prepared Au@N-GQDs show more than one order of magnitude enhancement in the fluorescence intensity as compared to the bare N-GQDs, which is attributed to hot electron generation and improved absorption in N-GQDs by local field enhancement and the modification of the edge functional groups. Because of the selective coordination to Fe3+ ions, the Au@N-GQDs exhibit extraordinary quenching of fluorescence, with ultrahigh sensitivity for the detection of Fe3+ (<1 nM). A new model for the charge-transfer dynamics is developed involving the Langmuir's law of adsorption to explain the unusual quenching, which strongly deviates from the known models of static/dynamic quenching. The proposed sensor is successfully implemented for the ultrasensitive detection of Fe3+ ions in human serum and Brahmaputra river water samples, representing its high potential applications in clinical as well as environmental diagnosis. Additionally, because of its high absorption in the UV-vis-NIR region and high charge density with long life excitons, the Au@N-GQDs are utilized as photodetectors with ∼104 times faster response than that of bare N-GQDs. The Au@N-GQD-based photodetector possesses a high responsivity of ∼1.36 A/W and a remarkably high external quantum efficiency of ∼292.2%, which is much superior to the GQD-based photodetectors reported till date. The underlying mechanism of ultrafast photoresponse is ascribed to the transfer of hot electrons along with the tunneling of the electrons from Au NPs to N-GQDs as well as the defect reduction of N-GQDs by the incorporation of Au NPs. Without the use of any charge transporting layer, the outstanding performance of N-GQD-based plasmonic photodetector opens up unique opportunities for future high-speed optoelectronic devices.

Entities:  

Keywords:  N-doped graphene quantum dots; charge transfer dynamic; nM level Fe3+ sensing in human serum; plasmonic hot electrons; ultrafast photodetector

Year:  2020        PMID: 31914727     DOI: 10.1021/acsami.9b19067

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  4 in total

Review 1.  Liquid-Exfoliated 2D Materials for Optoelectronic Applications.

Authors:  Fuad Indra Alzakia; Swee Ching Tan
Journal:  Adv Sci (Weinh)       Date:  2021-03-11       Impact factor: 16.806

2.  High yield synthesis of graphene quantum dots from biomass waste as a highly selective probe for Fe3+ sensing.

Authors:  Aumber Abbas; Tanveer A Tabish; Steve J Bull; Tuti Mariana Lim; Anh N Phan
Journal:  Sci Rep       Date:  2020-12-04       Impact factor: 4.379

3.  Highly Sensitive Detection of Iron Ions in Aqueous Solutions Using Fluorescent Chitosan Nanoparticles Functionalized by Rhodamine B.

Authors:  Zhiwei Liu; Na Li; Ping Liu; Zhihui Qin; Tifeng Jiao
Journal:  ACS Omega       Date:  2022-02-03

4.  Highly rapid and non-enzymatic detection of cholesterol based on carbon nitride quantum dots as fluorescent nanoprobes.

Authors:  Ying Chen; Gege Yang; Shanshan Gao; Liangliang Zhang; Mengdi Yu; Chunxia Song; Ying Lu
Journal:  RSC Adv       Date:  2020-10-29       Impact factor: 4.036

  4 in total

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