Maxwell–Stefan diffusion coefficient estimation for ternary systems: an ideal ternary alcohol system

文献情報

出版日 2017-06-05
DOI 10.1039/C7CP02582C
インパクトファクター 3.676
著者

Tariq Allie-Ebrahim, Qingyu Zhu, Pierre Bräuer, Geoff D. Moggridge, Carmine D'Agostino


原文を見る

要旨

The Maxwell–Stefan model is a popular diffusion model originally developed to model diffusion of gases, which can be considered thermodynamically ideal mixtures, although its application has been extended to model diffusion in non-ideal liquid mixtures as well. A drawback of the model is that it requires the Maxwell–Stefan diffusion coefficients, which are not based on measurable quantities but they have to be estimated. As a result, numerous estimation methods, such as the Darken model, have been proposed to estimate these diffusion coefficients. However, the Darken model was derived, and is only well defined, for binary systems. This model has been extended to ternary systems according to two proposed forms, one by R. Krishna and J. M. van Baten, Ind. Eng. Chem. Res., 2005, 44, 6939–6947 and the other by X. Liu, T. J. H. Vlugt and A. Bardow, Ind. Eng. Chem. Res., 2011, 50, 10350–10358. In this paper, the two forms have been analysed against the ideal ternary system of methanol/butan-1-ol/propan-1-ol and using experimental values of self-diffusion coefficients. In particular, using pulsed gradient stimulated echo nuclear magnetic resonance (PGSTE-NMR) we have measured the self-diffusion coefficients in various methanol/butan-1-ol/propan-1-ol mixtures. The experimental values of self-diffusion coefficients were then used as the input data required for the Darken model. The predictions of the two proposed multicomponent forms of this model were then compared to experimental values of mutual diffusion coefficients for the ideal alcohol ternary system. This experimental-based approach showed that the Liu's model gives better predictions compared to that of Krishna and van Baten, although it was only accurate to within 26%. Nonetheless, the multicomponent Darken model in conjunction with self-diffusion measurements from PGSTE-NMR represents an attractive method for a rapid estimation of mutual diffusion in multicomponent systems, especially when compared to exhaustive MD simulations.

関連文献

QSAR models reveal new EPAC-selective allosteric modulators

Hebatallah Mohamed, Hongzhao Shao, Madoka Akimoto, Patrick Darveau, Marc R. MacKinnon, Jakob Magolan

2022-08-03 Paper

DOI: 10.1039/D2CB00106C

Biosynthetic incorporation of fluorinated amino acids into the nonribosomal peptide gramicidin S

Maximilian Müll, Farzaneh Pourmasoumi, Leon Wehrhan, Olena Nosovska, Philipp Stephan, Hannah Zeihe, Ivan Vilotijevic, Bettina G. Keller

2023-07-25 Paper

DOI: 10.1039/D3CB00061C

Temporal imaging of drug dynamics in live cells using stimulated Raman scattering microscopy and a perfusion cell culture system

William J. Tipping, Andrew S. Merchant, Rebecca Fearon, Nicholas C. O. Tomkinson, Karen Faulds, Duncan Graham

2022-08-09 Paper

DOI: 10.1039/D2CB00160H

Disposable electrochemiluminescent biosensor for lactate determination in saliva

J. Ballesta Claver, M. C. Valencia Mirón, L. F. Capitán-Vallvey

2009-04-22 Paper

DOI: 10.1039/B821922B

Front cover

Cover

DOI: 10.1039/B608243M

Potential shift correction in multivariate curve resolution of voltammetric data. General formulation and application to some experimental systems

Arístides Alberich, José Manuel Díaz-Cruz, Cristina Ariño, Miquel Esteban

2007-11-02 Paper

DOI: 10.1039/B715667G

Aptamer-based analysis of angiogenin by fluorescence anisotropy

Wei Li, Kemin Wang, Weihong Tan, Changbei Ma, Xiaohai Yang

2006-11-27 Paper

DOI: 10.1039/B614138B

Promoters vs. telomeres: AP-endonuclease 1 interactions with abasic sites in G-quadruplex folds depend on topology

Shereen A. Howpay Manage, Judy Zhu, Aaron M. Fleming, Cynthia J. Burrows

2023-01-18 Paper

DOI: 10.1039/D2CB00233G

A compact broadband cavity enhanced absorption spectrometer for detection of atmospheric NO2 using light emitting diodes

Justin M. Langridge, Stephen M. Ball, Roderic L. Jones

2006-07-04 Paper

DOI: 10.1039/B605636A

Systematic optimization of exhaustive electrokinetic injection combined with micellar sweeping in capillary electrophoresis

Ning Fang, Pingjia Meng, Hong Zhang, Ying Sun, David D. Y. Chen

2006-12-18 Paper

DOI: 10.1039/B610564E

こちらもおすすめ

化合物よくある質問

1-{3-[5-(エチルカルボンイル)-2,4-ジメチル-1H-ピロロール-3-基]プロパニル}ピペリジン-4-カルボン酸について、適用される法規ガイドラインは何ですか?

この化合物はCAS番号1142209-81-1であり、GHS分類では corrosive (腐食性物質) と classified (分類物質) として指定され...

1142209-81-11-{3-[5-(Ethoxycarbo...
化合物よくある質問

2,2-二氟-1,3-ベンゾジオキサン-5-カルボキシlic酸とは何ですか?

2,2-二氟-1,3-ベンゾジオキサン-5-カルボキシlic酸は、CAS番号656-46-2の化合物で、化学式はC8H4F2O4です。この化合物は白色の結晶性粉...

656-46-22,2-Difluoro-1,3-ben...
化合物よくある質問

8-氯-4-色原酮の代替品はありますか?

8-氯-4-色原酮(CAS番号: 49701-11-3)の代替品には、他の色原酮類似物や、構造が似ている化合物があります。例えば、8-メチル-4-色原酮や、他の...

49701-11-38-Chloro-2,3-dihydro...
化合物よくある質問

エチル6,6-ジメチル-4,5,6,7-テトラヒドロ-1H-インドアゼー-3-カルボキシレートとは何ですか?

エチル6,6-ジメチル-4,5,6,7-テトラヒドロ-1H-インドアゼー-3-カルボキシレートは、CAS番号1233243-56-5を有する化合物です。これは有...

1233243-56-5Ethyl 6,6-dimethyl-4...
化合物よくある質問

4-叔丁基-6-氯-嘧啶に適用される法規ガイドラインは何ですか?

4-叔丁基-6-氯-嘧啶はCAS番号3435-24-3で、GHS分類では毒性物質とみなし、GHSの危険性分類が適用されます。REACH規則では登録が必要で、Eu...

3435-24-34-Tert-butyl-6-chlor...
化合物よくある質問

維库溴铵杂质Bはどのように合成されますか?

維库溴铵杂质Bは、アンドロステンデンから始まり、一連の合成反応、包括的な選択性と高い収率で合成されます。具体的には、ブロミド化、酸化、ジマーゼ反応、アミド化など...

50587-95-6(2beta,3alpha,5alpha...
化合物よくある質問

2-(4-氟苄基)-吡咯烷の物理化学的性質は何ですか?

CAS番号350017-04-8の2-(4-氟苄基)-吡咯烷は、結晶性の白色粉末です。分子量は199.17 g/molで、水に溶けにくいです。化学反応では比較的...

350017-04-82-(4-Fluorobenzyl)py...
化合物よくある質問

3-喹啉甲醛(2-チロール-8-エチル)は安全ですか?

3-喹啉甲醛(2-チロール-8-エチル)は一定の毒性を持つため、取扱には注意が必要です。使用する際は適切な防護具を着用し、密閉容器で保管・搬送し、直接的な接触を...

335196-05-92-Chloro-8-ethyl-3-q...
化合物よくある質問

エチル3-(ヒドロキシメチル)-1H-ピロール-2-カルボキシレートはどのように保存すればよいですか?

エチル3-(ヒドロキシメチル)-1H-ピロール-2-カルボキシレートは、室温(25℃)以下で保存し、直射日光を避け、乾燥した環境で保管することが推奨されます。ま...

75448-69-0Ethyl 3-(hydroxymeth...
化合物よくある質問

哌拉西林杂质Dは安全ですか?

哌拉西林杂质Dは安全性が確認されていません。使用または取り扱いには注意が必要で、適切な個人防護具を使用し、直接的な接触を避けることが推奨されます。

119410-05-88-Chloro-11-(4-piper...

掲載誌

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
自己引用率: 10.3%
年間論文数: 3036

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

おすすめ化合物

おすすめサプライヤー

免責事項
このページに表示される学術雑誌情報は、参考および研究目的のみを目的としています。当社は雑誌出版社とは提携しておらず、投稿の取り扱いも行っておりません。出版に関するお問い合わせは、各雑誌出版社に直接ご連絡ください。
表示されている情報に誤りがある場合は、support@chemtradehub.com までご連絡ください。迅速に確認し、対応いたします。