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TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water

Understanding the fundamentals of transport properties in two-dimensional (2D) materials is essential for their applications in devices, sensors, and so on. Herein, we report the impedance spectroscopic study of carbon nitride nanosheets (CNNS) and the composite with anatase (TiO(2)/CNNS, 20 atom% T...

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Autores principales: Maluangnont, Tosapol, Pulphol, Phieraya, Pongampai, Satana, Kobkeatthawin, Thawanrat, Smith, Siwaporn Meejoo, Vittayakorn, Naratip
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9940629/
https://www.ncbi.nlm.nih.gov/pubmed/36814882
http://dx.doi.org/10.1039/d3ra00045a
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author Maluangnont, Tosapol
Pulphol, Phieraya
Pongampai, Satana
Kobkeatthawin, Thawanrat
Smith, Siwaporn Meejoo
Vittayakorn, Naratip
author_facet Maluangnont, Tosapol
Pulphol, Phieraya
Pongampai, Satana
Kobkeatthawin, Thawanrat
Smith, Siwaporn Meejoo
Vittayakorn, Naratip
author_sort Maluangnont, Tosapol
collection PubMed
description Understanding the fundamentals of transport properties in two-dimensional (2D) materials is essential for their applications in devices, sensors, and so on. Herein, we report the impedance spectroscopic study of carbon nitride nanosheets (CNNS) and the composite with anatase (TiO(2)/CNNS, 20 atom% Ti), including their interaction with atmospheric water. The samples were characterized by X-ray diffraction, N(2) adsorption/desorption, solid state (1)H nuclear magnetic resonance spectroscopy, thermogravimetric analysis, and transmission electron microscopy. It is found that CNNS is highly insulating (resistivity ρ ∼ 10(10) Ω cm) and its impedance barely changes during a 20 min-measurement at room temperature and 70% relative humidity. Meanwhile, incorporating the semiconducting TiO(2) nanoparticles (∼10 nm) reduces ρ by one order of magnitude, and the decreased ρ is proportional to the exposure time to atmospheric water. Sorbed water shows up at low frequency (<10(2) Hz) with relaxation time in milliseconds, but the response intrinsic to CNNS and TiO(2)/CNNS is evident at higher frequency (>10(4) Hz) with relaxation time in microseconds. These two signals apparently correlate to the endothermic peak at ≤110 °C and >250 °C, respectively, in differential scanning calorimetry experiments. Universal power law analysis suggests charge hopping across the 3D conduction pathways, consistent with the capacitance in picofarad typical of grain response. Our work demonstrates that the use of various formalisms (i.e., impedance, permittivity, conductivity, and modulus) combined with a simple universal power law analysis provides insights into water-induced transport of the TiO(2)/CNNS composite without complicated curve fitting procedure or dedicated humidity control.
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spelling pubmed-99406292023-02-21 TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water Maluangnont, Tosapol Pulphol, Phieraya Pongampai, Satana Kobkeatthawin, Thawanrat Smith, Siwaporn Meejoo Vittayakorn, Naratip RSC Adv Chemistry Understanding the fundamentals of transport properties in two-dimensional (2D) materials is essential for their applications in devices, sensors, and so on. Herein, we report the impedance spectroscopic study of carbon nitride nanosheets (CNNS) and the composite with anatase (TiO(2)/CNNS, 20 atom% Ti), including their interaction with atmospheric water. The samples were characterized by X-ray diffraction, N(2) adsorption/desorption, solid state (1)H nuclear magnetic resonance spectroscopy, thermogravimetric analysis, and transmission electron microscopy. It is found that CNNS is highly insulating (resistivity ρ ∼ 10(10) Ω cm) and its impedance barely changes during a 20 min-measurement at room temperature and 70% relative humidity. Meanwhile, incorporating the semiconducting TiO(2) nanoparticles (∼10 nm) reduces ρ by one order of magnitude, and the decreased ρ is proportional to the exposure time to atmospheric water. Sorbed water shows up at low frequency (<10(2) Hz) with relaxation time in milliseconds, but the response intrinsic to CNNS and TiO(2)/CNNS is evident at higher frequency (>10(4) Hz) with relaxation time in microseconds. These two signals apparently correlate to the endothermic peak at ≤110 °C and >250 °C, respectively, in differential scanning calorimetry experiments. Universal power law analysis suggests charge hopping across the 3D conduction pathways, consistent with the capacitance in picofarad typical of grain response. Our work demonstrates that the use of various formalisms (i.e., impedance, permittivity, conductivity, and modulus) combined with a simple universal power law analysis provides insights into water-induced transport of the TiO(2)/CNNS composite without complicated curve fitting procedure or dedicated humidity control. The Royal Society of Chemistry 2023-02-20 /pmc/articles/PMC9940629/ /pubmed/36814882 http://dx.doi.org/10.1039/d3ra00045a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Maluangnont, Tosapol
Pulphol, Phieraya
Pongampai, Satana
Kobkeatthawin, Thawanrat
Smith, Siwaporn Meejoo
Vittayakorn, Naratip
TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title_full TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title_fullStr TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title_full_unstemmed TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title_short TiO(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
title_sort tio(2)/graphitic carbon nitride nanosheet composite with enhanced sensitivity to atmospheric water
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9940629/
https://www.ncbi.nlm.nih.gov/pubmed/36814882
http://dx.doi.org/10.1039/d3ra00045a
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