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Structural and Sorption Characteristics of Nanocellulose Aerogel-Based Composite Materials Doped with Mefenamic and Flufenamic Acids: Insights from Magic Angle Spinning and High-Pressure NMR Spectroscopy. / Sobornova, V.V.; Муллоярова, Валерия Вячеславовна; Belov, K.V.; Dyshin, A.A.; Толстой, Петр Михайлович; Kiselev, M.G.; Khodov, I.A.

в: Journal of Physical Chemistry Letters, Том 16, № 26, 25.06.2025, стр. 6817-6824.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{d8509a9cd1c342c29937f08b5e8304ef,
title = "Structural and Sorption Characteristics of Nanocellulose Aerogel-Based Composite Materials Doped with Mefenamic and Flufenamic Acids: Insights from Magic Angle Spinning and High-Pressure NMR Spectroscopy",
abstract = "Our research, which employs a comprehensive approach combining high-pressure and magic angle spinning (MAS) NMR spectroscopy methods, investigates the structural and sorption characteristics of composite materials based on cellulose aerogels. The 13C NMR studies, conducted in supercritical CO2, revealed kinetic parameters for the sorption processes that significantly differ from those of silica-based analogs. The analysis of chemical shifts from 19F MAS NMR spectra led to the first identification of two stable phase states of flufenamic acid within the cellulose aerogel: an amorphous phase within the pore volume (−62.15 ppm) and a liquid-like phase on the surface of the pores (−65.09 ppm), with a ratio of 2:1. These findings, which contrast starkly with previous data for silica systems, where only a liquid-like state was observed, underscore the unique three-dimensional architecture and highly developed porous structure of cellulose aerogels. These features appear to stabilize metastable amorphous phases of active pharmaceutical ingredients (APIs), opening up new perspectives for the use of cellulose aerogels in the controlled stabilization of metastable phases of APIs in composite materials.",
author = "V.V. Sobornova and Муллоярова, {Валерия Вячеславовна} and K.V. Belov and A.A. Dyshin and Толстой, {Петр Михайлович} and M.G. Kiselev and I.A. Khodov",
year = "2025",
month = jun,
day = "25",
doi = "10.1021/acs.jpclett.5c01303",
language = "English",
volume = "16",
pages = "6817--6824",
journal = "Journal of Physical Chemistry Letters",
issn = "1948-7185",
publisher = "American Chemical Society",
number = "26",

}

RIS

TY - JOUR

T1 - Structural and Sorption Characteristics of Nanocellulose Aerogel-Based Composite Materials Doped with Mefenamic and Flufenamic Acids: Insights from Magic Angle Spinning and High-Pressure NMR Spectroscopy

AU - Sobornova, V.V.

AU - Муллоярова, Валерия Вячеславовна

AU - Belov, K.V.

AU - Dyshin, A.A.

AU - Толстой, Петр Михайлович

AU - Kiselev, M.G.

AU - Khodov, I.A.

PY - 2025/6/25

Y1 - 2025/6/25

N2 - Our research, which employs a comprehensive approach combining high-pressure and magic angle spinning (MAS) NMR spectroscopy methods, investigates the structural and sorption characteristics of composite materials based on cellulose aerogels. The 13C NMR studies, conducted in supercritical CO2, revealed kinetic parameters for the sorption processes that significantly differ from those of silica-based analogs. The analysis of chemical shifts from 19F MAS NMR spectra led to the first identification of two stable phase states of flufenamic acid within the cellulose aerogel: an amorphous phase within the pore volume (−62.15 ppm) and a liquid-like phase on the surface of the pores (−65.09 ppm), with a ratio of 2:1. These findings, which contrast starkly with previous data for silica systems, where only a liquid-like state was observed, underscore the unique three-dimensional architecture and highly developed porous structure of cellulose aerogels. These features appear to stabilize metastable amorphous phases of active pharmaceutical ingredients (APIs), opening up new perspectives for the use of cellulose aerogels in the controlled stabilization of metastable phases of APIs in composite materials.

AB - Our research, which employs a comprehensive approach combining high-pressure and magic angle spinning (MAS) NMR spectroscopy methods, investigates the structural and sorption characteristics of composite materials based on cellulose aerogels. The 13C NMR studies, conducted in supercritical CO2, revealed kinetic parameters for the sorption processes that significantly differ from those of silica-based analogs. The analysis of chemical shifts from 19F MAS NMR spectra led to the first identification of two stable phase states of flufenamic acid within the cellulose aerogel: an amorphous phase within the pore volume (−62.15 ppm) and a liquid-like phase on the surface of the pores (−65.09 ppm), with a ratio of 2:1. These findings, which contrast starkly with previous data for silica systems, where only a liquid-like state was observed, underscore the unique three-dimensional architecture and highly developed porous structure of cellulose aerogels. These features appear to stabilize metastable amorphous phases of active pharmaceutical ingredients (APIs), opening up new perspectives for the use of cellulose aerogels in the controlled stabilization of metastable phases of APIs in composite materials.

UR - https://www.mendeley.com/catalogue/1808140b-449b-3ca0-af48-e28271b0c367/

U2 - 10.1021/acs.jpclett.5c01303

DO - 10.1021/acs.jpclett.5c01303

M3 - Article

VL - 16

SP - 6817

EP - 6824

JO - Journal of Physical Chemistry Letters

JF - Journal of Physical Chemistry Letters

SN - 1948-7185

IS - 26

ER -

ID: 142970431