Soft-trilinear constraints for improved quantitation in multivariate curve resolution
Literature Information
Hamid Abdollahi, Paul J. Gemperline
Nowadays, hyphenated chemical analysis methods like GC/MS, LC/MS, or HPLC with UV/Vis diode array detection are widely used. These methods produce a data matrix of mixtures measured during the analytical process. When a set of samples is to be analyzed with one data matrix per sample, the data is often presumed to have “trilinear” structure if the profile for each compound does not change shape or position from one sample to the other. By applying this information as a trilinearity constraint in Self Modeling Curve Resolution (SMCR) methods, overlapping peaks related to the pure compounds of interest can be resolved in a unique way. In practice, many systems have non-trilinear behavior due to deviation from ideal response, for example, a sample matrix effect or changes in instrumental response (e.g., shifts or changes in the shape of chromatographic peaks). In such cases, the trilinear model is not valid because every analyte does not have the same peak shape or position in every sample. In such cases, the unique profiles obtained by strictly enforced trilinearity constraints will not necessarily produce true profiles because the data set does not follow the assumed trilinear behavior. In this work, we introduce “soft-trilinearity constraints” to permit peak profiles of given components to have small deviations in their shape and position in different samples. The advantages and disadvantages of this approach are compared to other methods like PARAFAC2. We illustrate the influence of soft-trilinearity constraints on the accuracy of SMCR results for the case of a 3-component simulated system and an experimental data set. The results show that implementing soft-trilinearity constraints reduces the range of possible solutions considerably compared to the application of constraints such as just non-negativity. In addition, we show that the application of hard-trilinearity constraints can lead to solutions that are completely wrong or exclude the opportunity of a possible solution at all.
Recommended Journals

Organic Process Research & Development

Journal of Natural Medicines

Russian Journal of General Chemistry

Russian Journal of Bioorganic Chemistry

Russian Chemical Bulletin

Current Opinion in Colloid & Interface Science

Drug Discovery Today

Journal of Peptide Science

Crystallography Reports

Current Opinion in Solid State & Materials Science
Related Literature
A surfactant-assisted strategy to tailor Li-ion charge transfer interfacial resistance for scalable all-solid-state Li batteries
Chengtian Zhou, Alfred Junio Samson, Kyle Hofstetter, Venkataraman Thangadurai
DOI: 10.1039/C8SE00234G
Advances in constructing polymeric carbon-nitride-based nanocomposites and their applications in energy chemistry
Zhonghao Wang, Xun Hu, Guojun Zou, Zhiwei Huang, Zhicheng Tang, Qing Liu, Guangzhi Hu, Dongsheng Geng
DOI: 10.1039/C8SE00629F
Correction: Mesoporous thin film WO3 photoanode for photoelectrochemical water splitting: a sol–gel dip coating approach
Guido Baldinozzi, Dennis Friedrich, Stéphane Kressman, Henri Strub, Vincent Artero, Christel Laberty-Robert
DOI: 10.1039/C7SE90017A
Ultralayered core–shell metal oxide nanosheet arrays for supercapacitors with long-term electrochemical stability
Ye Shen, Yifan Pan, Zhenyu Cheng, Yen Wei, Guangjian Zeng, Liucheng Mao
DOI: 10.1039/C8SE00290H
Recent developments in tetrathiafulvalene and dithiafulvalene based metal-free organic sensitizers for dye-sensitized solar cells: a mini-review
Naresh Duvva, Ushasri Chilakamarthi, Lingamallu Giribabu
DOI: 10.1039/C7SE00068E
Ex situ solid electrolyte interphase synthesis via radiolysis of Li-ion battery anode–electrolyte system for improved coulombic efficiency
Fanny Varenne, John P. Alper, Frédéric Miserque, Adrien Boulineau, Jean-Frédéric Martin, Vincent Dauvois, Alexandre Demarque, Mickaël Bouhier, Florent Boismain, Sylvain Franger, Nathalie Herlin-Boime, Sophie Le Caër
DOI: 10.1039/C8SE00257F
FeS2 microspheres wrapped by N-doped rGO from an Fe-based ionic liquid precursor for rechargeable lithium ion batteries
Chengfeng Du, Jianrong Li, Xiaoying Huang
DOI: 10.1039/C8SE00539G
The improved ion clustering and conductivity of a di-quaternized poly(arylene ether ketone sulfone)-based alkaline fuel cell membrane
DOI: 10.1039/C7SE00097A
Environmentally friendly nitrogen-doped carbon quantum dots for next generation solar cells
Conor Rocks, Dilli Babu Padmanaban, Paul Maguire, Vladimir Svrcek, Davide Mariotti
DOI: 10.1039/C7SE00158D
You might also like
How should waste containing 6-Chloro-5-(2'-hydroxy-3'-methoxy-4-biphenylyl)-3-(3-methoxyphenyl)-1H-pyrrolo[3,2-d]pyrimidine-2,4(3H,5H)-dione (CAS: 1346607-05-3) be handled?
Waste containing 6-Chloro-5-(2'-hydroxy-3'-methoxy-4-biphenylyl)-3-(3-methoxyphe...
What are the main uses of (3alpha,5alpha)-3-Hydroxypregnane-11,20-dione (CAS: 23930-19-0)?
(3alpha,5alpha)-3-Hydroxypregnane-11,20-dione is primarily used in the pharmaceu...
What is the market or research trend for 4-Amino-6-chloro-2-pyridinecarboxylic acid (CAS: 546141-56-4)?
The market for 4-Amino-6-chloro-2-pyridinecarboxylic acid (CAS: 546141-56-4) is ...
Are there alternatives to (2-Benzoylethyl)trimethylammonium chloride (CAS: 24472-88-6) in synthesis?
Alternatives to (2-Benzoylethyl)trimethylammonium chloride (CAS: 24472-88-6) in ...
Is N-[4-Nitro-3-(trifluoromethyl)phenyl]acetamide (CAS: 393-12-4) safe?
N-[4-Nitro-3-(trifluoromethyl)phenyl]acetamide (CAS: 393-12-4) is generally safe...
Are there alternatives to [(4R,5R,6S)-5-hydroxy-10-imino-3,7-dioxa-1,9-diazatricyclo[6.4.0.02,6]dodeca-8,11-dien-4-yl]methyl dihydrogen phosphate (CAS: 39679-56-6) in synthesis?
Alternative reagents such as other phosphates or similar functional groups can b...
Are there alternatives to N,N'-Bis(3-aminopropyl)-1,3-propanediamine (CAS: 4605-14-5) in synthesis?
There are alternatives to N,N'-Bis(3-aminopropyl)-1,3-propanediamine (CAS: 4605-...
What precautions should be taken when handling Aluminium trihexadecanoate (CAS: 555-35-1)?
When handling Aluminium trihexadecanoate, it is important to use appropriate per...
What is (1,1-Dioxido-3-oxo-1,2-benzothiazol-2(3H)-yl)acetic acid (CAS: 52188-11-1)?
(1,1-Dioxido-3-oxo-1,2-benzothiazol-2(3H)-yl)acetic acid is a chemical compound ...
Are there alternatives to 5,5-dimethyloxolan-2-one (CAS: 3123-97-5) in synthesis?
Several alternatives to 5,5-dimethyloxolan-2-one (CAS: 3123-97-5) can be used in...
Source Journal
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.
![2-Methyl-2-propanyl (2E)-5-chloro-2-[3-methoxy-4-(4-methyl-1H-imidazol-1-yl)benzylidene]pentanoate structure 2-Methyl-2-propanyl (2E)-5-chloro-2-[3-methoxy-4-(4-methyl-1H-imidazol-1-yl)benzylidene]pentanoate structure](https://static.chemtradehub.com/structs/122/1225232-42-7-ee03.webp)


![Benzo[b]naphtho[2,1-d]thiophene structure Benzo[b]naphtho[2,1-d]thiophene structure](https://static.chemtradehub.com/structs/239/239-35-0-ff90.webp)
![Benzyl 2-{[(tert-butoxy)carbonyl]amino}acetate structure Benzyl 2-{[(tert-butoxy)carbonyl]amino}acetate structure](https://static.chemtradehub.com/structs/542/54244-69-8-6399.webp)