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Plasmon-Coupled Photocapacitor Neuromodulators

[Image: see text] Efficient transduction of optical energy to bioelectrical stimuli is an important goal for effective communication with biological systems. For that, plasmonics has a significant potential via boosting the light–matter interactions. However, plasmonics has been primarily used for h...

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Autores principales: Melikov, Rustamzhon, Srivastava, Shashi Bhushan, Karatum, Onuralp, Dogru-Yuksel, Itir Bakis, Bahmani Jalali, Houman, Sadeghi, Sadra, Dikbas, Ugur Meric, Ulgut, Burak, Kavakli, Ibrahim Halil, Cetin, Arif E., Nizamoglu, Sedat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7598729/
https://www.ncbi.nlm.nih.gov/pubmed/32667186
http://dx.doi.org/10.1021/acsami.0c09455
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author Melikov, Rustamzhon
Srivastava, Shashi Bhushan
Karatum, Onuralp
Dogru-Yuksel, Itir Bakis
Bahmani Jalali, Houman
Sadeghi, Sadra
Dikbas, Ugur Meric
Ulgut, Burak
Kavakli, Ibrahim Halil
Cetin, Arif E.
Nizamoglu, Sedat
author_facet Melikov, Rustamzhon
Srivastava, Shashi Bhushan
Karatum, Onuralp
Dogru-Yuksel, Itir Bakis
Bahmani Jalali, Houman
Sadeghi, Sadra
Dikbas, Ugur Meric
Ulgut, Burak
Kavakli, Ibrahim Halil
Cetin, Arif E.
Nizamoglu, Sedat
author_sort Melikov, Rustamzhon
collection PubMed
description [Image: see text] Efficient transduction of optical energy to bioelectrical stimuli is an important goal for effective communication with biological systems. For that, plasmonics has a significant potential via boosting the light–matter interactions. However, plasmonics has been primarily used for heat-induced cell stimulation due to membrane capacitance change (i.e., optocapacitance). Instead, here, we demonstrate that plasmonic coupling to photocapacitor biointerfaces improves safe and efficacious neuromodulating displacement charges for an average of 185% in the entire visible spectrum while maintaining the faradic currents below 1%. Hot-electron injection dominantly leads the enhancement of displacement current in the blue spectral window, and the nanoantenna effect is mainly responsible for the improvement in the red spectral region. The plasmonic photocapacitor facilitates wireless modulation of single cells at three orders of magnitude below the maximum retinal intensity levels, corresponding to one of the most sensitive optoelectronic neural interfaces. This study introduces a new way of using plasmonics for safe and effective photostimulation of neurons and paves the way toward ultrasensitive plasmon-assisted neurostimulation devices.
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spelling pubmed-75987292020-11-02 Plasmon-Coupled Photocapacitor Neuromodulators Melikov, Rustamzhon Srivastava, Shashi Bhushan Karatum, Onuralp Dogru-Yuksel, Itir Bakis Bahmani Jalali, Houman Sadeghi, Sadra Dikbas, Ugur Meric Ulgut, Burak Kavakli, Ibrahim Halil Cetin, Arif E. Nizamoglu, Sedat ACS Appl Mater Interfaces [Image: see text] Efficient transduction of optical energy to bioelectrical stimuli is an important goal for effective communication with biological systems. For that, plasmonics has a significant potential via boosting the light–matter interactions. However, plasmonics has been primarily used for heat-induced cell stimulation due to membrane capacitance change (i.e., optocapacitance). Instead, here, we demonstrate that plasmonic coupling to photocapacitor biointerfaces improves safe and efficacious neuromodulating displacement charges for an average of 185% in the entire visible spectrum while maintaining the faradic currents below 1%. Hot-electron injection dominantly leads the enhancement of displacement current in the blue spectral window, and the nanoantenna effect is mainly responsible for the improvement in the red spectral region. The plasmonic photocapacitor facilitates wireless modulation of single cells at three orders of magnitude below the maximum retinal intensity levels, corresponding to one of the most sensitive optoelectronic neural interfaces. This study introduces a new way of using plasmonics for safe and effective photostimulation of neurons and paves the way toward ultrasensitive plasmon-assisted neurostimulation devices. American Chemical Society 2020-07-15 2020-08-12 /pmc/articles/PMC7598729/ /pubmed/32667186 http://dx.doi.org/10.1021/acsami.0c09455 Text en This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Melikov, Rustamzhon
Srivastava, Shashi Bhushan
Karatum, Onuralp
Dogru-Yuksel, Itir Bakis
Bahmani Jalali, Houman
Sadeghi, Sadra
Dikbas, Ugur Meric
Ulgut, Burak
Kavakli, Ibrahim Halil
Cetin, Arif E.
Nizamoglu, Sedat
Plasmon-Coupled Photocapacitor Neuromodulators
title Plasmon-Coupled Photocapacitor Neuromodulators
title_full Plasmon-Coupled Photocapacitor Neuromodulators
title_fullStr Plasmon-Coupled Photocapacitor Neuromodulators
title_full_unstemmed Plasmon-Coupled Photocapacitor Neuromodulators
title_short Plasmon-Coupled Photocapacitor Neuromodulators
title_sort plasmon-coupled photocapacitor neuromodulators
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7598729/
https://www.ncbi.nlm.nih.gov/pubmed/32667186
http://dx.doi.org/10.1021/acsami.0c09455
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