Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
Thermally activated adsorption–desorption processes on CVD graphene. / Sorokin, D. V.; Andryushchenko, V. A.; Artishevsky, K. V. и др.
в: Letters on Materials, Том 16, № 3, 2026, стр. 211-218.Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
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TY - JOUR
T1 - Thermally activated adsorption–desorption processes on CVD graphene
AU - Sorokin, D. V.
AU - Andryushchenko, V. A.
AU - Artishevsky, K. V.
AU - Smovzh, D. V.
AU - Gareev, T. I.
AU - Zaitsev, O. V.
AU - Nerushev, O. A.
AU - Boyko, E. V.
AU - Bogomolova, A. I.
AU - Ryabov, V. O.
N1 - Thermally activated adsorption-desorption processes on CVD graphene / D. V. Sorokin, V. A. Andryushchenko, K. V. Artishevsky [et al.] // Letters on Materials. – 2026. – Vol. 16, No. 3. – P. 211-218. – DOI 10.48612/letters/2026-3-211-218. – EDN CCFGYK. This work was carried out under state contract with IT SB RAS №126021217040-4.
PY - 2026
Y1 - 2026
N2 - Graphene is considered a promising material for various applications due to its unique physicochemical properties. However, its practical use is limited by the presence of surface-adsorbed molecules. Acting as dopants, these molecules significantly modify the Fermi level and affect the electrical resistance of the material. In this work, we investigate the effect of thermal annealing in an Ar atmosphere and under high vacuum on the gas-sensing properties of CVD-grown graphene transferred onto a SiO2 /Si substrate. Annealing exhibits a dual effect: (i) removal of weakly bound dopants (H2 O, O2 ) that initially cause p-doping, which manifests as an increase in resistance and a change in gas response characteristics; (ii) exposure of structural defects (vacancies, domain boundaries) on the cleaned surface, which become active adsorption sites. As a result, after annealing the interaction with oxygen and water vapor is enhanced: instead of the reversible response typical of physisorption, a stronger interaction with an irreversible component upon pumping is observed. The kinetics of resistance recovery in air follow a biexponential dependence with characteristic times on the order of minutes, indicating at least two readsorption mechanisms (competitive adsorption of H2 O and O2, or adsorption on energetically distinct sites). The obtained results demonstrate that thermal treatment enables control over the density of active adsorption sites and, consequently, the gas sensitivity of graphene, but the limited stability of the achieved state in air calls for the development of surface passivation methods to ensure long-term preservation of the sensing characteristics.
AB - Graphene is considered a promising material for various applications due to its unique physicochemical properties. However, its practical use is limited by the presence of surface-adsorbed molecules. Acting as dopants, these molecules significantly modify the Fermi level and affect the electrical resistance of the material. In this work, we investigate the effect of thermal annealing in an Ar atmosphere and under high vacuum on the gas-sensing properties of CVD-grown graphene transferred onto a SiO2 /Si substrate. Annealing exhibits a dual effect: (i) removal of weakly bound dopants (H2 O, O2 ) that initially cause p-doping, which manifests as an increase in resistance and a change in gas response characteristics; (ii) exposure of structural defects (vacancies, domain boundaries) on the cleaned surface, which become active adsorption sites. As a result, after annealing the interaction with oxygen and water vapor is enhanced: instead of the reversible response typical of physisorption, a stronger interaction with an irreversible component upon pumping is observed. The kinetics of resistance recovery in air follow a biexponential dependence with characteristic times on the order of minutes, indicating at least two readsorption mechanisms (competitive adsorption of H2 O and O2, or adsorption on energetically distinct sites). The obtained results demonstrate that thermal treatment enables control over the density of active adsorption sites and, consequently, the gas sensitivity of graphene, but the limited stability of the achieved state in air calls for the development of surface passivation methods to ensure long-term preservation of the sensing characteristics.
KW - adsorption and desorption
KW - annealing
KW - gas sensing
KW - graphene
KW - surface defects
KW - графен
KW - отжиг
KW - газовый анализ
KW - адсорбция и десорбция
KW - поверхностные дефекты
UR - https://www.mendeley.com/catalogue/a993904a-6ae9-39b9-9752-b6a5b702cf09/
UR - https://www.scopus.com/pages/publications/105050789460
UR - https://elibrary.ru/item.asp?id=92023855
U2 - 10.48612/letters/2026-3-211-218
DO - 10.48612/letters/2026-3-211-218
M3 - Article
VL - 16
SP - 211
EP - 218
JO - Письма о материалах
JF - Письма о материалах
SN - 2218-5046
IS - 3
ER -
ID: 83350019