An in-depth analysis approach enabling precision single chain nanoparticle design
Literature Information
Ralf Schweins, Hartmut Komber
The synthesis of single chain nanoparticles (SCNPs) is a vibrant field in macromolecular science, enabled by a rich variety of synthetic strategies to induce macromolecular chain folding. Due to the decrease of the hydrodynamic volume upon folding, SCNP formation is typically characterized by a shift towards higher elution volumes in size exclusion chromatography (SEC). However, a step-change in the methodologies for SCNP analysis is required for the in-depth understanding of the nature of intramolecular polymer folding and internal SCNP structure, which is critical to enable their application as catalytic nanoreactors. Herein, we exploit a unique combination of small-angle neutron scattering (SANS), 19F NMR spectroscopy, and quadruple detection SEC to generate an encompassing and systematic view of the folded morphology of poly(tert-butyl acrylate) based-SCNPs as a function of their reactive group density (5, 15, and 30 mol%) and absolute molar mass (20, 50, 100 kDa). In addition to detailed morphological insights, we establish that the primary factor dictating the compaction of SCNPs is their reactive group density, which is ineffective below 5 mol%, reaching maximum compaction close to 30 mol%. The molar mass of the precursor polymers has a minor impact on how an SCNP compacts for molar masses above 20 kDa.
Related Literature
Interfacial kinetics of synergistic extraction of samarium(iii) studied by micro-two-phase sheath flow/fluorescence microscopy
Takahira Tokimoto, Satoshi Tsukahara, Hitoshi Watarai
DOI: 10.1039/B410593A
Strategy for streamlined release identity testing of chromatography media
Nataliya Afonina, Lokesh Bhattacharyya, John P. Hennessey, Jr.
DOI: 10.1039/B404899G
Encapsulation of multi-walled carbon nanotubes (MWCNTs) in Ba2+-alginate to form coated micro-beads and their application to the pre-concentration/elimination of dibenzo-p-dioxin, dibenzofuran, and biphenyl from contaminated water
Bunshi Fugetsu, Shuya Satoh, Alexander Iles, Kazuhiko Tanaka, Norio Nishi, Fumio Watari
DOI: 10.1039/B405325G
An easily integrative and efficient micromixer and its application to the spectroscopic detection of glucose-catalyst reactions
T. H. Park, J. B. Choo
DOI: 10.1039/B414180F
New chemical evidence for the ability to generate radical molecular ions of polyenes from ESI and HR-MALDI mass spectrometry
Thais Guaratini, Ricardo L. Vessecchi, Francisco C. Lavarda, Patrícia M. B. G. Maia Campos, Zeki Naal, Paul J. Gates, Norberto P. Lopes
DOI: 10.1039/B412154F
Application of the lag-after-pulsed-separation (LAPS) flow meter to different protein solutions
Shramik Sengupta, Goher Mahmud, Daniel J. Chiou, Babak Ziaie
DOI: 10.1039/B413808M
Immunoassay for B. globigii spores as a model for detecting B. anthracis spores in finished water
Svetlana Farrell, H. Brian Halsall, William R. Heineman
DOI: 10.1039/B413652G
Transition from Schottky to ohmic contacts in the C31 and MoS2 van der Waals heterostructure
Fei Lu, Shengli Zhang
DOI: 10.1039/D3CP02357E
A study of Nafion-coated bismuth-film electrodes for the determination of trace metals by anodic stripping voltammetry
Georgia Kefala, Anastasios Economou, Anastasios Voulgaropoulos
DOI: 10.1039/B404978K
A first-principles study of the structural, electronic and elastic properties of the FeO2–FeO2He system under high pressure
Haibo Liu, Lei Liu, Cunlin Xin, Longxing Yang, Xiaoyu Gu
DOI: 10.1039/D3CP02315J
You might also like
What are the main uses of 1H-Indazole-6-carbonitrile (CAS: 141290-59-7)?
1H-Indazole-6-carbonitrile finds applications in pharmaceuticals, where it serve...
How should waste containing Dioctyl (2E)-2-butenedioate (CAS: 2997-85-5) be handled?
Waste containing Dioctyl (2E)-2-butenedioate (CAS: 2997-85-5) should be collecte...
What industries use Sodium [(1,2-benzoxazol-3-ylmethyl)sulfonyl]azanide (CAS: 68291-98-5)?
Sodium [(1,2-benzoxazol-3-ylmethyl)sulfonyl]azanide is primarily used in pharmac...
Are there alternatives to Dimethyl 4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-2,6-pyridinedicarboxylate (CAS: 741709-66-0) in synthesis?
Dimethyl 4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-2,6-pyridinedicarboxyla...
How should waste containing 2-Fluoro-6-hydrazinopyridine (CAS: 80714-39-2) be handled?
Waste containing 2-Fluoro-6-hydrazinopyridine (CAS: 80714-39-2) should be manage...
What is 6-Formyl-2-pyridinecarboxylic acid (CAS: 499214-11-8)?
6-Formyl-2-pyridinecarboxylic acid is an organic compound with the molecular for...
What is the market or research trend for 3-(3,4-dimethoxyphenyl)-2,5-dimethyl-N-(2-morpholin-4-ylethyl)pyrazolo[1,5-a]pyrimidin-7-amine (CAS: 900874-91-1)?
Research trends for this compound indicate a focus on its potential applications...
How is 9H-Tribenzo[b,d,f]azepine (CAS: 29875-73-8) typically synthesized?
9H-Tribenzo[b,d,f]azepine is typically synthesized via a multi-step process invo...
How is 1-Cyclopropyl-7-ethoxy-6-fluoro-8-methoxy-4-oxo-1,4-dihydro-3-quinolinecarboxylic acid (CAS: 1797982-51-4) typically synthesized?
1-Cyclopropyl-7-ethoxy-6-fluoro-8-methoxy-4-oxo-1,4-dihydro-3-quinolinecarboxyli...
How should waste containing Methyl 3-oxo-1,2,3,4-tetrahydro-6-quinoxalinecarboxylate (CAS: 671820-52-3) be handled?
Waste containing Methyl 3-oxo-1,2,3,4-tetrahydro-6-quinoxalinecarboxylate (CAS: ...
Source Journal
Polymer Chemistry

Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.














