Дослідження воднево-зв’язаного комплексу (CH3)2CO–HCl методами FTIR спектроскопії та DFT

Автор(и)

  • G. Nurmurodova Institute of Engineering Physics, Samarkand State University named Sharof Rashidov
  • I. Doroshenko Institute of Engineering Physics, Samarkand State University named Sharof Rashidov, Taras Shevchenko National University of Kyiv
  • G. Murodov Institute of Engineering Physics, Samarkand State University named Sharof Rashidov
  • U. Khujamov Institute of Engineering Physics, Samarkand State University named Sharof Rashidov

DOI:

https://doi.org/10.15407/ujpe70.6.38`1

Ключові слова:

комплекс (CH3)2CO–HCl, IЧ спектр, водневий зв’язок, FTIR спектроскопiя, DFT, AIM, NCI

Анотація

Вивчення комплексiв з водневими зв’язками має вирiшальне значення для розумiння мiжмолекулярних взаємодiй, якi впливають на молекулярну структуру, розподiл електронної густини та коливальнi властивостi. У цiй роботi ми дослiджуємо комплекс ацетон-хлористого водню (CH3)2CO–HCl за допомогою iнфрачервоної (IЧ) фур’є-спектроскопiї – Fourier transform infrared (FTIR) spectroscopy – у крiогенних розчинах криптону та ксенону, а також розрахунковим методом теорiї функцiонала густини (density functional theory, DFT). Експериментальнi IЧ спектри виявляють характернi змiщення частоти пiд час утворення комплексу, тодi як обчислювальний аналiз дає зрозумiти змiни геометричної та електронної структури. Топологiчний аналiз, включно з методами атомiв у молекулах (atoms in molecules, AIM) i нековалентної взаємодiї (non-covalent interaction, NCI), пiдтверджує наявнiсть i силу водневих зв’язкiв. Дослiдження висвiтлює вплив розчинника на коливальнi властивостi та мiжмолекулярну взаємодiю i покращує розумiння ролi водневих зв’язкiв у складних молекулярних системах.

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Завантаження

Опубліковано

2025-06-28

Номер

Розділ

Фізика рідин та рідинних систем, біофізика і медична фізика

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