Alkali metal cation adduct effect on polybutylene adipate oligomers: Ion mobility-mass spectrometry
-
Add time:07/20/2019 Source:sciencedirect.com
Polyurethane (PU) di-block copolymers are one of the most versatile polymeric materials, comprised of hard and soft segments that contribute to PU's broad range of applications. Polybutylene adipate (PBA) is a commonly used soft segment in PU systems. Characterizing the structure of PBA polymers is essential to understanding complex heterogeneity within a PU sample. In this study, ion mobility-mass spectrometry (IM-MS) and tandem mass spectrometry (MS/MS) are used to structurally characterize a PBA standard (Mn = 2250) adducted with a combination of monovalent alkali cations (Li, Na, K, Rb, and Cs). IM-MS profiles show unique trends associated with each cation-adducted PBA sample. Charge state trends: +1, +2, and +3 were extracted for cation-adducted PBA oligomers, and investigated to study gas-phase transitional folding. To quantitatively assess the gas-phase structural similarities and differences, a statistical test (ANOVA) was used to compare PBA oligomer-cation collisional cross sections (CCS). Fragmentation studies (MS/MS) identified the unique behavior of Li and Na for promoting 1,5 H-shift and 1,3 H-shift fragmentation, whereas the PBA precursor preferentially loses the larger K, Rb, and Cs cations as the ion activation energy is increased. The combination of adducted alkali cations, IM-MS, and MS/MS allow for unique structural characterization of this important PBA system.
We also recommend Trading Suppliers and Manufacturers of sodium hydrogen adipate (cas 18996-34-4). Pls Click Website Link as below: cas 18996-34-4 suppliers
Prev:Poly(glycerol adipate) – indomethacin drug conjugates – synthesis and in vitro characterization
Next:Preparation and characterization of acetylated maltodextrin and its blend with poly(butylene adipate-co-terephthalate)) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Preparation and characterization of nanocomposite of maleated poly(butylene adipate-co-terephthalate) with organoclay07/27/2019
- Adipate as a tetradentate bridging ligand: Synthesis, structure and properties of Cu(II) and Ni(II) compounds with 2,2′-dipyridylamine as a terminal co-ligand07/26/2019
- Metabolic engineering of Escherichia coli for producing adipic acid through the reverse adipate-degradation pathway07/25/2019
- Processing and mechanical performances of Poly(Butylene Succinate–co–Adipate) (PBSA) and raw hydrolyzed collagen (HC) thermoplastic blends07/24/2019
- Indomethacin functionalised poly(glycerol adipate) nanospheres as promising candidates for modified drug release07/23/2019
- Preparation and characterization of acetylated maltodextrin and its blend with poly(butylene adipate-co-terephthalate)07/22/2019
- Poly(glycerol adipate) – indomethacin drug conjugates – synthesis and in vitro characterization07/21/2019
- The solubility measurements of sodium dicarboxylate salts; sodium oxalate, malonate, succinate, glutarate, and adipate in water from T = (279.15 to 358.15) K07/19/2019
- Structural, spectroscopic and thermal property studies of cobalt adipate tetrahydrate single crystals07/18/2019
-
Health and Chemical more >
-
Related Products
- Hydrogen bromide
- Hydrogen disulfide
- Hydrogen fluoride-pyridine
- Hydrogen hydroxy[2-hydroxy-3-[(2-hydroxy-3-nitrobenzylidene)amino]-5-nitrobenzenesulfonato(3-)]chromate(1-) 3-((2-ethylhexyl)oxy)-1-propanamine
- Hydrogen iodide
- Hydrogen peroxide
- HYDROGEN PEROXIDE (HP)
- Hydrogen Selenide
- Hydrogen sulfide
- Hydrogen sulfite


