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Updated: Nov 18, 2025

Utilization of Plasmonic and Photonic Crystal Nanostructures for Enhanced Micro- and Nanoparticle Manipulation
Published on: September 27, 2011
Plasmonic nano-antimicrobials: properties, mechanisms and applications in microbe inactivation and sensing
Xingda An1, Shyamsunder Erramilli2, Björn M Reinhard1
1Department of Chemistry, Boston University, Boston, MA 02215, USA. bmr@bu.edu and The Photonics Center, Boston University, Boston, MA 02215, USA.
Abstract:
Bacterial, viral and fungal infections pose serious threats to human health and well-being. The continuous emergence of acute infectious diseases caused by pathogenic microbes and the rapid development of resistances against conventional antimicrobial drugs necessitates the development of new and effective strategies for the safe elimination of microbes in water, food or on surfaces, as well as for the inactivation of pathogenic microbes in human hosts. The need for new antimicrobials has triggered the development of plasmonic nano-antimicrobials that facilitate both light-dependent and -independent microbe inactivation mechanisms. This review introduces the relevant photophysical mechanisms underlying these plasmonic nano-antimicrobials, and provides an overview of how the photoresponses and materials properties of plasmonic nanostructures can be applied in microbial pathogen inactivation and sensing applications. Through a systematic analysis of the inactivation efficacies of different plasmonic nanostructures, this review outlines the current state-of-the-art in plasmonic nano-antimicrobials and defines the application space for different microbial inactivation strategies. The advantageous optical properties of plasmonic nano-antimicrobials also enhance microbial detection and sensing modalities and thus help to avoid exposure to microbial pathogens. Sensitive and fast plasmonic microbial sensing modalities and their theranostic and targeted therapeutic applications are discussed.
Insights
Plasmonic nano-antimicrobials offer new ways to fight infections by inactivating microbes using light. These advanced materials also improve pathogen detection, aiding in disease prevention and treatment.
Area of Science:
- Nanotechnology
- Biomedical Engineering
- Materials Science
Background:
- Microbial infections are a significant global health concern.
- Antimicrobial resistance necessitates novel strategies for pathogen control.
- Plasmonic nano-antimicrobials offer promising solutions for microbe inactivation.
Purpose of the Study:
- To review photophysical mechanisms of plasmonic nano-antimicrobials.
- To explore applications in microbial inactivation and sensing.
- To outline the state-of-the-art and future directions.
Main Methods:
- Systematic analysis of plasmonic nanostructures' inactivation efficacy.
- Review of photophysical mechanisms and material properties.
- Discussion of sensing and therapeutic applications.
Main Results:
- Plasmonic nanostructures demonstrate effective light-dependent and -independent microbe inactivation.
- Optical properties enhance microbial detection and sensing.
- Various strategies exist for microbial inactivation using plasmonic nanomaterials.
Conclusions:
- Plasmonic nano-antimicrobials are effective against diverse microbial threats.
- These nanomaterials have significant potential in pathogen inactivation, sensing, and theranostics.
- Further research can optimize their application in healthcare and environmental safety.
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