How useful is molecular modelling in combination with ion mobility mass spectrometry for ‘small molecule’ ion mobility collision cross-sections?
文献信息
Cris Lapthorn, Frank S. Pullen, Babur Z. Chowdhry, Patricia Wright, George L. Perkins, Yanira Heredia
Ion mobility mass spectrometry is used to measure the drift-time of an ion. The drift-time of an ion can be used to calculate the collision cross-section (CCS) in travelling wave ion mobility (e.g. Waters Synapt and Vion instruments) or directly determine the experimental CCS (e.g. Agilent 6560 instrument and many drift-tube instruments). A comparison of the experimental CCS and theoretical CCS values obtained from trajectory method He(g) parameterised MOBCAL and N2(g) parameterised MOBCAL software, for a range of 20 ‘small molecules’ is presented. This study utilises density functional theory B3LYP methods and the 6-31G+(d,p) basis set to calculate theoretical CCS values. This study seeks to assess the accuracy of a common procedure using CCS calibration with poly-(D/L)-alanine derived from drift-cell measurements and the original release of MOBCAL software and compare it with recent improvements with a drug-like molecule calibration set and a revision of MOBCAL parameterised for N2(g) drift gas. This study represents one of the first quantitative evaluations of the agreement between theoretical CCS and experimental CCS values for a range of small pharmaceutically relevant molecules using travelling wave ion mobility mass spectrometry. Accurate theoretical CCS may allow optimisation of ion mobility separations in silico, provide CCS databases that can confirm structures without the need for alternative analytical tools such as nuclear magnetic resonance spectroscopy (NMR) and assignment of unknowns and positional isomers without requiring reference materials.
期刊推荐

Russian Journal of Bioorganic Chemistry

Current Opinion in Colloid & Interface Science

Current Opinion in Solid State & Materials Science

Crystallography Reports

Acta Materialia

Drug Discovery Today

New Journal of Chemistry

Chemical Communications

Chemistry Education Research and Practice

Russian Chemical Bulletin
相关文献
UV/Vis/near-IR spectroscopic characteristics of H4−xCsxPVMo11O40 (x = 0, 2) catalyst under different temperatures and gas atmospheres
J. Melsheimer, J. Kröhnert, R. Ahmad, S. Klokishner, F. C. Jentoft, G. Mestl, R. Schlögl
DOI: 10.1039/B109293F
Low temperature matrix-isolation and solid state vibrational spectra of 5-chlorotetrazole
Susana C. S. Bugalho, A. C. Serra, Leszek Lapinski, M. Lurdes S. Cristiano, Rui Fausto
DOI: 10.1039/B111329C
Probing the electronic structure of polynuclear metal clusters with total electron spin S > 1/2 and significant zero-field splitting; Application to the clusters of the nitrogenase MoFe-protein
Jan Petersen, David J. Lowe
DOI: 10.1039/B110486C
FTIR spectroscopy of carbon dioxide adsorbed on sodium- and magnesium-exchanged ETS-10 molecular sieves
F. X. Llabrés i Xamena, A. Zecchina
DOI: 10.1039/B110483G
Kinetics for acid-dissociation of tetraphenylporphinetetrasulfonate in the ground state measured by laser photolysis relaxation method
Satoshi Tsukahara, Hitoshi Watarai
DOI: 10.1039/B108532H
A hybrid SAM phospholipid approach to fabricating a ‘free’ supported lipid bilayer
Arwel V. Hughes, Arach Goldar, Michael C. Gerstenberg, Steve J. Roser, Jeremy Bradshaw
DOI: 10.1039/B200409G
HSO2 isomers in rare-gas solids
Esa Isoniemi, Leonid Khriachtchev, Jan Lundell, Markku Räsänen
DOI: 10.1039/B110109A
The vacuum ultraviolet laser excitation spectra for free ion-pair (X+ + Y−) formation from jet-cooled I2 and ICl
Kenneth P. Lawley, Alexander C. Flexen, Robert R. J. Maier, Andreas Manck, Trevor Ridley, Robert J. Donovan
DOI: 10.1039/B109558G
Interaction between probe molecules and zeolites. Part I: Pair-wise addition scheme applied to the calculation of the interaction energy of CO and N2 adsorbed in Na4Ca4A
A. V. Larin, L. Leherte, D. P. Vercauteren
DOI: 10.1039/B107243A
Is xenon an “ennobled” alkane?
Eduardo J. M. Filipe, Lino M. B. Dias, Jorge C. G. Calado, Clare McCabe, George Jackson
DOI: 10.1039/B109165B
您可能还喜欢
如何储存8-溴-4-羟基-6-(三氟甲氧基)喹啉-3-羧酸乙酯(CAS号:1072944-81-0)?
8-溴-4-羟基-6-(三氟甲氧基)喹啉-3-羧酸乙酯应储存在阴凉、干燥的地方,避免光照和高温。建议使用密封容器进行储存,以防止水分和空气的影响。
2,2-二(2-呋喃基)丙烷(CAS号:17920-88-6)的市场或研究趋势如何?
2,2-二(2-呋喃基)丙烷的研究趋势主要集中在新型材料的开发和应用,如高分子材料、有机光电材料等。市场趋势方面,随着环保要求的提高和新材料的应用,该化合物的需...
如何处理含有螺[呋喃并[3,4-b]吡啶-5(7H),4'-哌啶]-7-酮盐酸盐(CAS号:475152-31-9)的废料?
对于含有螺[呋喃并[3,4-b]吡啶-5(7H),4'-哌啶]-7-酮盐酸盐的废料,应首先进行分类和分离,以减少危险物质的数量。随后,可以考虑通过化学氧化、生物...
Cinnamyl 3-aminobut-2-enoate(CAS号:113898-97-8)安全吗?
Cinnamyl 3-氨基丁-2-烯酸在接触皮肤和眼睛时可能会引起刺激。应避免吸入其粉尘和烟雾。操作时应穿戴适当的个人防护装备,如手套、护目镜和实验室外套。
反式-2-十二碳烯二酸(CAS号:6402-36-4)的市场或研究趋势如何?
反式-2-十二碳烯二酸在医药、材料科学等领域有一定的应用,但其市场相对较小。近年来,由于环保意识的提升,对环境友好型化学品的需求增加,研究倾向于开发更绿色的合成...
什么是(9ci)-1H-苯并咪唑-5-乙酸(CAS号:473895-86-2)?
(9ci)-1H-苯并咪唑-5-乙酸是一种含氮杂环化合物,其化学结构为1H-苯并咪唑-5-乙酸。该化合物具有特定的分子式C8H7NO2,属于有机酸类化合物。
酞菁蓝(CAS号:147-14-8)的主要用途是什么?
酞菁蓝主要用作颜料和染料,广泛应用于塑料、油墨、涂料、纺织品及橡胶工业中。它也用于光敏材料,如太阳能电池和光刻胶。在医疗领域,酞菁蓝因其光敏特性被用于某些光动力...
5-甲基-1,2,3,4-四氢异喹啉(CAS号:123593-99-7)安全吗?
5-甲基-1,2,3,4-四氢异喹啉在使用和储存时需要谨慎处理。它具有一定的毒性,应避免吸入其蒸气或直接接触皮肤和眼睛。操作此化合物时,建议佩戴防护眼镜、实验服...
如何处理含有3',4',5'-三甲氧基苯乙酮(CAS号:1136-86-3)的废料?
含有3',4',5'-三甲氧基苯乙酮的废液应首先确保其是否为危险废物,根据当地法规确定处理方法。通常,这类有机废液可以采用中和反应降低其pH值,然后通过蒸馏或萃...
如何储存KI-7(CAS号:1489263-00-4)?
KI-7应储存在通风良好的干燥环境中,避免光照和高温。建议使用密封容器储存,并保持在阴凉处。储存温度应控制在室温范围内,一般建议不超过25°C。避免与氧化剂接触...
来源期刊
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.



![Imidazo[1,2-c]pyrimidine structure Imidazo[1,2-c]pyrimidine structure](https://cnstatic.chemtradehub.com/structs/274/274-78-2-8b4c.webp)
![2,4-Dichloro-6-isopropyl-5H-pyrrolo[3,4-d]pyrimidin-7(6H)-one structure 2,4-Dichloro-6-isopropyl-5H-pyrrolo[3,4-d]pyrimidin-7(6H)-one structure](https://cnstatic.chemtradehub.com/structs/107/1079649-94-7-ad4a.webp)