Search Results - "Stro̷mme, Maria"

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  1. 1

    Unveiling the Nature of lignin’s Interaction with Molecules: A Mechanistic Understanding of Adsorption of Methylene Blue Dye by Tkachenko, Oleg, Diment, Daryna, Rigo, Davide, Stro̷mme, Maria, Budnyak, Tetyana M.

    Published in Biomacromolecules (08-07-2024)
    “…The valorization of lignin into advanced materials for water and soil remediation is experiencing a surge in demand. However, it is imperative that material…”
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    Journal Article
  2. 2

    Toward Biomass-Based Organic Electronics: Continuous Flow Synthesis and Electropolymerization of N‑Substituted Pyrroles by Frasca, Serena, Galkin, Maxim, Stro̷mme, Maria, Lindh, Jonas, Gising, Johan

    Published in ACS omega (26-03-2024)
    “…Pyrroles are foundational building blocks in a wide array of disciplines, including chemistry, pharmaceuticals, and materials science. Currently sourced from…”
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  3. 3

    Cellulose Nanofiber @ Conductive Metal–Organic Frameworks for High-Performance Flexible Supercapacitors by Zhou, Shengyang, Kong, Xueying, Zheng, Bing, Huo, Fengwei, Strømme, Maria, Xu, Chao

    Published in ACS nano (27-08-2019)
    “…Conductive metal–organic frameworks (c-MOFs) show great potential in electrochemical energy storage thanks to their high electrical conductivity and highly…”
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  4. 4

    Cellulose‐based Supercapacitors: Material and Performance Considerations by Wang, Zhaohui, Tammela, Petter, Strømme, Maria, Nyholm, Leif

    Published in Advanced energy materials (20-09-2017)
    “…One of the biggest challenges we will face over the next few decades is finding a way to power the future while maintaining strong socioeconomic growth and a…”
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  5. 5

    Highly Transparent, Flexible, and Mechanically Strong Nanopapers of Cellulose Nanofibers @Metal–Organic Frameworks by Zhou, Shengyang, Strømme, Maria, Xu, Chao

    Published in Chemistry : a European journal (07-03-2019)
    “…Freestanding nanopapers were fabricated by the assembly of metal–organic frameworks (MOFs) onto cellulose nanofibers (CNFs). The CNFs are wrapped by…”
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  6. 6

    An All-Organic Proton Battery by Emanuelsson, Rikard, Sterby, Mia, Strømme, Maria, Sjödin, Martin

    Published in Journal of the American Chemical Society (05-04-2017)
    “…Rechargeable batteries that use organic matter as the capacity-carrying material have previously been considered a technology for the future. Earlier batteries…”
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  7. 7

    Preparation of porous 2,3-dialdehyde cellulose beads crosslinked with chitosan and their application in adsorption of Congo red dye by Ruan, Chang-Qing, Strømme, Maria, Lindh, Jonas

    Published in Carbohydrate polymers (01-02-2018)
    “…•Efficient method for crosslinking DAC beads with chitosan.•Highly porous beads with high specific surface area produced.•Beads stable at highly alkaline…”
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  8. 8

    Cladophora Cellulose: Unique Biopolymer Nanofibrils for Emerging Energy, Environmental, and Life Science Applications by Zhou, Shengyang, Nyholm, Leif, Strømme, Maria, Wang, Zhaohui

    Published in Accounts of chemical research (20-08-2019)
    “…Conspectus Because of its natural abundance, hierarchical fibrous structure, mechanical flexibility, potential for chemical modification, biocompatibility,…”
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  9. 9

    An Aqueous Conducting Redox‐Polymer‐Based Proton Battery that Can Withstand Rapid Constant‐Voltage Charging and Sub‐Zero Temperatures by Strietzel, Christian, Sterby, Mia, Huang, Hao, Strømme, Maria, Emanuelsson, Rikard, Sjödin, Martin

    Published in Angewandte Chemie International Edition (08-06-2020)
    “…Electrodes based on organic matter operating in aqueous electrolytes enable new approaches and technologies for assembling and utilizing batteries that are…”
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  10. 10

    On the use of ion-crosslinked nanocellulose hydrogels for wound healing solutions: Physicochemical properties and application-oriented biocompatibility studies by Basu, Alex, Lindh, Jonas, Ålander, Eva, Strømme, Maria, Ferraz, Natalia

    Published in Carbohydrate polymers (15-10-2017)
    “…•Ca2+-crosslinked nanocellulose self-standing hydrogels are proposed for wound healing applications.•The hydrogels could maintain a suitable moist environment…”
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  11. 11

    Ambient Aqueous Synthesis of Imine-Linked Covalent Organic Frameworks (COFs) and Fabrication of Freestanding Cellulose Nanofiber@COF Nanopapers by Kong, Xueying, Wu, Zhongqi, Strømme, Maria, Xu, Chao

    Published in Journal of the American Chemical Society (10-01-2024)
    “…Covalent organic frameworks (COFs) are usually synthesized under solvothermal conditions that require the use of toxic organic solvents, high reaction…”
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  12. 12

    Redox active covalent organic framework-based conductive nanofibers for flexible energy storage device by Kong, Xueying, Zhou, Shengyang, Strømme, Maria, Xu, Chao

    Published in Carbon (New York) (01-01-2021)
    “…Covalent organic frameworks (COFs) constitute a family of crystalline porous polymers that are being studied for electrochemical energy storage. However, their…”
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  13. 13

    Highly Crystalline PEDOT Nanofiber Templated by Highly Crystalline Nanocellulose by Zhou, Shengyang, Qiu, Zhen, Strømme, Maria, Wang, Zhaohui

    Published in Advanced functional materials (01-12-2020)
    “…Packing conjugated conducting polymer chains into long‐range order can significantly boost their carrier‐transport properties, allowing the design and…”
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  14. 14

    A green and simple method for preparation of an efficient palladium adsorbent based on cysteine functionalized 2,3-dialdehyde cellulose by Ruan, Changqing, Strømme, Maria, Lindh, Jonas

    Published in Cellulose (London) (01-08-2016)
    “…A green and efficient adsorbent for adsorption of palladium ions was prepared from 2,3-dialdehyde cellulose (DAC) originating from nanocellulose from the green…”
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  15. 15

    Ion-crosslinked wood-derived nanocellulose hydrogels with tunable antibacterial properties: Candidate materials for advanced wound care applications by Basu, Alex, Heitz, Karen, Strømme, Maria, Welch, Ken, Ferraz, Natalia

    Published in Carbohydrate polymers (01-02-2018)
    “…[Display omitted] •Wound dressings consisting of ion-crosslinked wood-derived nanocellulose hydrogels are shown to have tailorable antibacterial…”
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  16. 16

    Nanocellulose Modified Polyethylene Separators for Lithium Metal Batteries by Pan, Ruijun, Xu, Xingxing, Sun, Rui, Wang, Zhaohui, Lindh, Jonas, Edström, Kristina, Strømme, Maria, Nyholm, Leif

    “…Poor cycling stability and safety concerns regarding lithium (Li) metal anodes are two major issues preventing the commercialization of high‐energy density Li…”
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  17. 17

    Lightweight, Thin, and Flexible Silver Nanopaper Electrodes for High‐Capacity Dendrite‐Free Sodium Metal Anodes by Wang, Zhaohui, Zhang, Xiaoliang, Zhou, Shengyang, Edström, Kristina, Strømme, Maria, Nyholm, Leif

    Published in Advanced functional materials (28-11-2018)
    “…Owing to its resource‐abundant and favorable theoretical capacity, sodium metal is regarded as a promising anode material for sodium metal batteries. However,…”
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  18. 18

    Toward Flexible Polymer and Paper-Based Energy Storage Devices by Nyholm, Leif, Nyström, Gustav, Mihranyan, Albert, Strømme, Maria

    Published in Advanced materials (Weinheim) (01-09-2011)
    “…All‐polymer and paper‐based energy storage devices have significant inherent advantages in comparison with many currently employed batteries and…”
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  19. 19

    Surface Modified Nanocellulose Fibers Yield Conducting Polymer-Based Flexible Supercapacitors with Enhanced Capacitances by Wang, Zhaohui, Carlsson, Daniel O, Tammela, Petter, Hua, Kai, Zhang, Peng, Nyholm, Leif, Strømme, Maria

    Published in ACS nano (28-07-2015)
    “…We demonstrate that surface modified nanocellulose fibers (NCFs) can be used as substrates to synthesize supercapacitor electrodes with the highest full…”
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  20. 20

    Current status and future prospects of nanotechnology in cosmetics by MIHRANYAN, Albert, FERRAZ, Natalia, STRØMME, Maria

    Published in Progress in materials science (01-06-2012)
    “…The cosmetics industry was among the first to implement nanotechnological principles in product development. Of more than one thousand registered…”
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