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Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon

[Image: see text] Rising global demand for biodegradable materials and green sources of energy has brought attention to lignin. Herein, we report a method for manufacturing standalone lignin membranes without additives for the first time to date. We demonstrate a scalable method for macroporous (∼10...

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Autores principales: Prochukhan, Nadezda, O’Brien, Stephen A., Davó-Quiñonero, Arantxa, Trubetskaya, Anna, Cotter, Eoin, Selkirk, Andrew, Senthamaraikannan, Ramsankar, Ruether, Manuel, McCloskey, David, Morris, Michael A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9198978/
https://www.ncbi.nlm.nih.gov/pubmed/35506692
http://dx.doi.org/10.1021/acs.biomac.2c00228
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author Prochukhan, Nadezda
O’Brien, Stephen A.
Davó-Quiñonero, Arantxa
Trubetskaya, Anna
Cotter, Eoin
Selkirk, Andrew
Senthamaraikannan, Ramsankar
Ruether, Manuel
McCloskey, David
Morris, Michael A.
author_facet Prochukhan, Nadezda
O’Brien, Stephen A.
Davó-Quiñonero, Arantxa
Trubetskaya, Anna
Cotter, Eoin
Selkirk, Andrew
Senthamaraikannan, Ramsankar
Ruether, Manuel
McCloskey, David
Morris, Michael A.
author_sort Prochukhan, Nadezda
collection PubMed
description [Image: see text] Rising global demand for biodegradable materials and green sources of energy has brought attention to lignin. Herein, we report a method for manufacturing standalone lignin membranes without additives for the first time to date. We demonstrate a scalable method for macroporous (∼100 to 200 nm pores) lignin membrane production using four different organosolv lignin materials under a humid environment (>50% relative humidity) at ambient temperatures (∼20 °C). A range of different thicknesses is reported with densely porous films observed to form if the membrane thickness is below 100 nm. The fabricated membranes were readily used as a template for Ni(2+) incorporation to produce a nickel oxide membrane after UV/ozone treatment. The resultant mask was etched via an inductively coupled plasma reactive ion etch process, forming a silicon membrane and as a result yielding black silicon (BSi) with a pore depth of >1 μm after 3 min with reflectance <3% in the visible light region. We anticipate that our lignin membrane methodology can be readily applied to various processes ranging from catalysis to sensing and adapted to large-scale manufacturing.
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spelling pubmed-91989782022-06-16 Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon Prochukhan, Nadezda O’Brien, Stephen A. Davó-Quiñonero, Arantxa Trubetskaya, Anna Cotter, Eoin Selkirk, Andrew Senthamaraikannan, Ramsankar Ruether, Manuel McCloskey, David Morris, Michael A. Biomacromolecules [Image: see text] Rising global demand for biodegradable materials and green sources of energy has brought attention to lignin. Herein, we report a method for manufacturing standalone lignin membranes without additives for the first time to date. We demonstrate a scalable method for macroporous (∼100 to 200 nm pores) lignin membrane production using four different organosolv lignin materials under a humid environment (>50% relative humidity) at ambient temperatures (∼20 °C). A range of different thicknesses is reported with densely porous films observed to form if the membrane thickness is below 100 nm. The fabricated membranes were readily used as a template for Ni(2+) incorporation to produce a nickel oxide membrane after UV/ozone treatment. The resultant mask was etched via an inductively coupled plasma reactive ion etch process, forming a silicon membrane and as a result yielding black silicon (BSi) with a pore depth of >1 μm after 3 min with reflectance <3% in the visible light region. We anticipate that our lignin membrane methodology can be readily applied to various processes ranging from catalysis to sensing and adapted to large-scale manufacturing. American Chemical Society 2022-05-04 2022-06-13 /pmc/articles/PMC9198978/ /pubmed/35506692 http://dx.doi.org/10.1021/acs.biomac.2c00228 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Prochukhan, Nadezda
O’Brien, Stephen A.
Davó-Quiñonero, Arantxa
Trubetskaya, Anna
Cotter, Eoin
Selkirk, Andrew
Senthamaraikannan, Ramsankar
Ruether, Manuel
McCloskey, David
Morris, Michael A.
Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title_full Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title_fullStr Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title_full_unstemmed Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title_short Room Temperature Fabrication of Macroporous Lignin Membranes for the Scalable Production of Black Silicon
title_sort room temperature fabrication of macroporous lignin membranes for the scalable production of black silicon
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9198978/
https://www.ncbi.nlm.nih.gov/pubmed/35506692
http://dx.doi.org/10.1021/acs.biomac.2c00228
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