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Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations

[Image: see text] A new graphene oxide (GO) model with reasonable functional group types and distribution modes was proposed by integrating potentiometric titrations and ab initio calculations. Due to the complex synthesis mechanism, the atomic structure of GO has been controversial for a long time....

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Autores principales: Tao, Wuqing, Lan, Youshi, Zhang, Jiqiao, Zhu, Liyang, Liu, Qian, Yang, Yating, Yang, Suliang, Tian, Guoxin, Zhang, Shengdong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10339393/
https://www.ncbi.nlm.nih.gov/pubmed/37457448
http://dx.doi.org/10.1021/acsomega.3c01596
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author Tao, Wuqing
Lan, Youshi
Zhang, Jiqiao
Zhu, Liyang
Liu, Qian
Yang, Yating
Yang, Suliang
Tian, Guoxin
Zhang, Shengdong
author_facet Tao, Wuqing
Lan, Youshi
Zhang, Jiqiao
Zhu, Liyang
Liu, Qian
Yang, Yating
Yang, Suliang
Tian, Guoxin
Zhang, Shengdong
author_sort Tao, Wuqing
collection PubMed
description [Image: see text] A new graphene oxide (GO) model with reasonable functional group types and distribution modes was proposed by integrating potentiometric titrations and ab initio calculations. Due to the complex synthesis mechanism, the atomic structure of GO has been controversial for a long time. Here, we use density functional theory calculations to mimic the oxidation process, and a series of GO fragments (GOFs) were deduced. A new pK(a) calculation method (RCDPKA) developed specifically in this work was further used to predict pK(a) values of the fragments. Then, we performed potentiometric titrations on four different GO samples to confirm the existence of these GOFs and determine the content of functional groups. Interestingly, different GO samples present the same pK(a) values in titration, and the results are consistent with the predicted ones. Based on the evidence from titration and calculation, prominent correlations between functional groups could be found. Groups at the edges are mainly double-interactive carboxyls (pK(a1) ≈ 3.4, pK(a2) ≈ 5.7) and double-adjacent phenolic hydroxyls (pK(a1) ≈ 8.8, pK(a2) ≈ 12.1), while groups on the plane are mainly collocated epoxies and hydroxyls (pK(a1) ≈ 11.1, pK(a2) ≈ 13.8) on both sides of the plane with a meta-positional hydrogen bond interaction. These findings were further validated by multiple characterizations and GO modifications. These results not only stimulate a fundamental understanding of the GO structure but also provide a quantitative analysis method for functional groups on GO.
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spelling pubmed-103393932023-07-14 Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations Tao, Wuqing Lan, Youshi Zhang, Jiqiao Zhu, Liyang Liu, Qian Yang, Yating Yang, Suliang Tian, Guoxin Zhang, Shengdong ACS Omega [Image: see text] A new graphene oxide (GO) model with reasonable functional group types and distribution modes was proposed by integrating potentiometric titrations and ab initio calculations. Due to the complex synthesis mechanism, the atomic structure of GO has been controversial for a long time. Here, we use density functional theory calculations to mimic the oxidation process, and a series of GO fragments (GOFs) were deduced. A new pK(a) calculation method (RCDPKA) developed specifically in this work was further used to predict pK(a) values of the fragments. Then, we performed potentiometric titrations on four different GO samples to confirm the existence of these GOFs and determine the content of functional groups. Interestingly, different GO samples present the same pK(a) values in titration, and the results are consistent with the predicted ones. Based on the evidence from titration and calculation, prominent correlations between functional groups could be found. Groups at the edges are mainly double-interactive carboxyls (pK(a1) ≈ 3.4, pK(a2) ≈ 5.7) and double-adjacent phenolic hydroxyls (pK(a1) ≈ 8.8, pK(a2) ≈ 12.1), while groups on the plane are mainly collocated epoxies and hydroxyls (pK(a1) ≈ 11.1, pK(a2) ≈ 13.8) on both sides of the plane with a meta-positional hydrogen bond interaction. These findings were further validated by multiple characterizations and GO modifications. These results not only stimulate a fundamental understanding of the GO structure but also provide a quantitative analysis method for functional groups on GO. American Chemical Society 2023-06-29 /pmc/articles/PMC10339393/ /pubmed/37457448 http://dx.doi.org/10.1021/acsomega.3c01596 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Tao, Wuqing
Lan, Youshi
Zhang, Jiqiao
Zhu, Liyang
Liu, Qian
Yang, Yating
Yang, Suliang
Tian, Guoxin
Zhang, Shengdong
Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title_full Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title_fullStr Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title_full_unstemmed Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title_short Revealing the Chemical Nature of Functional Groups on Graphene Oxide by Integrating Potentiometric Titration and Ab Initio Calculations
title_sort revealing the chemical nature of functional groups on graphene oxide by integrating potentiometric titration and ab initio calculations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10339393/
https://www.ncbi.nlm.nih.gov/pubmed/37457448
http://dx.doi.org/10.1021/acsomega.3c01596
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