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Aryl-Diazafluoren(on)es for Organic Optoelectronics : Toward Air-Stable N-type OFETs and Gas Sensors. / Cheshkina, Darya S; Becker, Christina S; Sonina, Alina A et al.

In: ACS applied materials & interfaces, Vol. 17, No. 37, 17.09.2025, p. 52403-52415.

Research output: Contribution to journalArticlepeer-review

Harvard

Cheshkina, DS, Becker, CS, Sonina, AA, Trul, AA, Koskin, IP, Trukhanov, VA, Shundrina, IK, Paraschuk, DY & Kazantsev, MS 2025, 'Aryl-Diazafluoren(on)es for Organic Optoelectronics: Toward Air-Stable N-type OFETs and Gas Sensors', ACS applied materials & interfaces, vol. 17, no. 37, pp. 52403-52415. https://doi.org/10.1021/acsami.5c11469

APA

Cheshkina, D. S., Becker, C. S., Sonina, A. A., Trul, A. A., Koskin, I. P., Trukhanov, V. A., Shundrina, I. K., Paraschuk, D. Y., & Kazantsev, M. S. (2025). Aryl-Diazafluoren(on)es for Organic Optoelectronics: Toward Air-Stable N-type OFETs and Gas Sensors. ACS applied materials & interfaces, 17(37), 52403-52415. https://doi.org/10.1021/acsami.5c11469

Vancouver

Cheshkina DS, Becker CS, Sonina AA, Trul AA, Koskin IP, Trukhanov VA et al. Aryl-Diazafluoren(on)es for Organic Optoelectronics: Toward Air-Stable N-type OFETs and Gas Sensors. ACS applied materials & interfaces. 2025 Sept 17;17(37):52403-52415. doi: 10.1021/acsami.5c11469

Author

Cheshkina, Darya S ; Becker, Christina S ; Sonina, Alina A et al. / Aryl-Diazafluoren(on)es for Organic Optoelectronics : Toward Air-Stable N-type OFETs and Gas Sensors. In: ACS applied materials & interfaces. 2025 ; Vol. 17, No. 37. pp. 52403-52415.

BibTeX

@article{6cbbe7bfe385496db4f09166aaa3c6c0,
title = "Aryl-Diazafluoren(on)es for Organic Optoelectronics: Toward Air-Stable N-type OFETs and Gas Sensors",
abstract = "While fluorene-containing materials are widely used in organic optoelectronics as bright emitters and hole semiconductors, their diazafluorene analogues have been poorly explored, though their nitrogen atoms could result in electron transport and bring sensory abilities. Here, we report the synthesis, characterization, and detailed study of a series of 4,5-diazafluorene-derivatives with different donor/acceptor substituents and organic semiconductors based on these molecules. The crystal structures of all the materials were solved by X-ray diffraction, indicating the presence of extensive π-stacking and anisotropic charge-transfer pathways. The materials were applied as active layers in single-crystal and thin-film organic field-effect transistors (OFETs) demonstrating air-stable electron transport with charge-carrier mobility up to 0.02 cm2/(V s) for (2,7-diphenyl-4,5-diazafluorene-9-ylidene)malononitrile (P-DAF-CN). Moreover, P-DAF-CN thin-film OFETs were employed as gas sensors demonstrating a sensor response toward sub-ppm concentrations of hydrogen sulfide. 4,5-Diazafluorene-based materials are shown to be promising organic semiconductors on the way to high-performance air-stable n-channel OFETs and electronic nose applications.",
author = "Cheshkina, {Darya S} and Becker, {Christina S} and Sonina, {Alina A} and Trul, {Askold A} and Koskin, {Igor P} and Trukhanov, {Vasiliy A} and Shundrina, {Inna K} and Paraschuk, {Dmitry Yu} and Kazantsev, {Maxim S}",
year = "2025",
month = sep,
day = "17",
doi = "10.1021/acsami.5c11469",
language = "English",
volume = "17",
pages = "52403--52415",
journal = "ACS applied materials & interfaces",
issn = "1944-8244",
publisher = "ACS Publication",
number = "37",

}

RIS

TY - JOUR

T1 - Aryl-Diazafluoren(on)es for Organic Optoelectronics

T2 - Toward Air-Stable N-type OFETs and Gas Sensors

AU - Cheshkina, Darya S

AU - Becker, Christina S

AU - Sonina, Alina A

AU - Trul, Askold A

AU - Koskin, Igor P

AU - Trukhanov, Vasiliy A

AU - Shundrina, Inna K

AU - Paraschuk, Dmitry Yu

AU - Kazantsev, Maxim S

PY - 2025/9/17

Y1 - 2025/9/17

N2 - While fluorene-containing materials are widely used in organic optoelectronics as bright emitters and hole semiconductors, their diazafluorene analogues have been poorly explored, though their nitrogen atoms could result in electron transport and bring sensory abilities. Here, we report the synthesis, characterization, and detailed study of a series of 4,5-diazafluorene-derivatives with different donor/acceptor substituents and organic semiconductors based on these molecules. The crystal structures of all the materials were solved by X-ray diffraction, indicating the presence of extensive π-stacking and anisotropic charge-transfer pathways. The materials were applied as active layers in single-crystal and thin-film organic field-effect transistors (OFETs) demonstrating air-stable electron transport with charge-carrier mobility up to 0.02 cm2/(V s) for (2,7-diphenyl-4,5-diazafluorene-9-ylidene)malononitrile (P-DAF-CN). Moreover, P-DAF-CN thin-film OFETs were employed as gas sensors demonstrating a sensor response toward sub-ppm concentrations of hydrogen sulfide. 4,5-Diazafluorene-based materials are shown to be promising organic semiconductors on the way to high-performance air-stable n-channel OFETs and electronic nose applications.

AB - While fluorene-containing materials are widely used in organic optoelectronics as bright emitters and hole semiconductors, their diazafluorene analogues have been poorly explored, though their nitrogen atoms could result in electron transport and bring sensory abilities. Here, we report the synthesis, characterization, and detailed study of a series of 4,5-diazafluorene-derivatives with different donor/acceptor substituents and organic semiconductors based on these molecules. The crystal structures of all the materials were solved by X-ray diffraction, indicating the presence of extensive π-stacking and anisotropic charge-transfer pathways. The materials were applied as active layers in single-crystal and thin-film organic field-effect transistors (OFETs) demonstrating air-stable electron transport with charge-carrier mobility up to 0.02 cm2/(V s) for (2,7-diphenyl-4,5-diazafluorene-9-ylidene)malononitrile (P-DAF-CN). Moreover, P-DAF-CN thin-film OFETs were employed as gas sensors demonstrating a sensor response toward sub-ppm concentrations of hydrogen sulfide. 4,5-Diazafluorene-based materials are shown to be promising organic semiconductors on the way to high-performance air-stable n-channel OFETs and electronic nose applications.

UR - https://pubmed.ncbi.nlm.nih.gov/40913549/

UR - https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105016653277&origin=inward

U2 - 10.1021/acsami.5c11469

DO - 10.1021/acsami.5c11469

M3 - Article

C2 - 40913549

VL - 17

SP - 52403

EP - 52415

JO - ACS applied materials & interfaces

JF - ACS applied materials & interfaces

SN - 1944-8244

IS - 37

ER -

ID: 69977023