Improved surface-enhanced Raman and catalytic activities of reduced graphene oxide–osmium hybrid nano thin films

Author:

Kavitha C.1ORCID,Bramhaiah K.2,John Neena S.2,Aggarwal Shantanu3

Affiliation:

1. Department of Chemistry, Centre for Advanced Materials Research, B.M.S. Institute of Technology, Avalahalli, Yelahanka, Visvesvaraya Technological University, Bangalore, Karnataka 560064, India

2. Centre for Nano and Soft Matter Sciences, Bangalore, Jalahalli 560013, India

3. Chemistry and Physics of Materials Unit, Jawaharlal Nehru Center for Advanced Scientific Research (JNCASR), Jakkur PO, Bangalore, Karnataka, India

Abstract

Reduced graphene oxide–osmium (rGO-Os) hybrid nano dendtrites have been prepared by simple liquid/liquid interface method for the first time. The method involves the introduction of phase-transfered metal organic precursor in toluene phase and GO dispersion in the aqueous phase along with hydrazine hydrate as the reducing agent. Dendritic networks of Os nanoparticles and their aggregates decorating rGO layers are obtained. The substrate shows improved catalytic and surface-enhanced activities comparable with previous reports. The catalytic activity was tested for the reduction of p -nitroaniline into p -phenyldiamine with an excess amount of NaBH 4 . The catalytic activity factors of these hybrid films are 2.3 s −1  g −1 (Os film) and 4.4 s −1  g −1 (rGO-Os hybrid film), which are comparable with other noble metal nanoparticles such as Au, Ag, but lower than Pd-based catalysts. Surface-enhanced Raman spectroscopy (SERS) measurements have been done on rhodamine 6G (R6G) and methylene blue dyes. The enhancement factor for the R6G adsorbed on rGO-Os thin film is 1.0 × 10 5 and for Os thin film is 7 × 10 3 . There is a 14-fold enhancement observed for Os hybrids with rGO. The enhanced catalytic and SERS activities of rGO-Os hybrid thin film prepared by simple liquid/liquid interface method open up new challenges in electrocatalytic application and SERS-based detection of biomolecules.

Funder

DST-Science and Engineering Research Board

Publisher

The Royal Society

Subject

Multidisciplinary

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