Literature DB >> 32302092

Strong, Machinable, and Insulating Chitosan-Urea Aerogels: Toward Ambient Pressure Drying of Biopolymer Aerogel Monoliths.

Natalia Guerrero-Alburquerque1,2, Shanyu Zhao1, Nour Adilien1, Matthias M Koebel1, Marco Lattuada2, Wim J Malfait1.   

Abstract

Biopolymer aerogels are an emerging class of materials with potential applications in drug delivery, thermal insulation, separation, and filtration. Chitosan is of particular interest as a sustainable, biocompatible, and abundant raw material. Here, we present urea-modified chitosan aerogels with a high surface area and excellent thermal and mechanical properties. The irreversible gelation of an acidic chitosan solution is triggered by the thermal decomposition of urea at 80 °C through an increase in pH and, more importantly, the formation of abundant ureido terminal groups. The hydrogels are dried using either supercritical CO2 drying (SCD) or ambient pressure drying (APD) methods to elucidate the influence of the drying process on the final aerogel properties. The hydrogels are exchanged into ethanol prior to SCD, and into ethanol and then heptane prior to APD. The surface chemistry and microstructure are monitored by solid-state NMR and Fourier transform infrared spectroscopy, scanning electron microscopy, and nitrogen sorption. Surprisingly, large monolithic aerogel plates (70 × 70 mm2) can be produced by APD, albeit at a somewhat higher density (0.17-0.42 g/cm3). The as prepared aerogels have thermal conductivities of ∼24 and ∼31 mW/(m·K) and surface areas of 160-170 and 85-230 m2/g, for SCD and APD, respectively. For a primarily biopolymer-based material, these aerogels are exceptionally stable at elevated temperature (TGA) and char and self-extinguish after direct flame exposure. The urea-modified chitosan aerogels display superior mechanical properties compared to traditional silica aerogels, with no brittle rupture up to at least 80% strain, and depending on the chitosan concentration, relatively high E-moduli (1.0-11.6 MPa), and stress at 80% strain values (σ80 of 3.5-17.9 MPa). Remarkably, the aerogel monoliths can be shaped and machined with standard tools, for example, drilling and sawing. This first demonstration to produce monolithic and machinable, mesoporous aerogels from bio-sourced, renewable, and nontoxic precursors, combined with the potential for reduced production cost by means of simple APD, opens up new opportunities for biopolymer aerogel applications and marks an important step toward commercialization of biopolymer aerogels.

Entities:  

Keywords:  Aerogel; Chitosan; Mesoporous materials; Urea; Ureido; Ureylene; Xerogel

Mesh:

Substances:

Year:  2020        PMID: 32302092     DOI: 10.1021/acsami.0c03047

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  8 in total

Review 1.  Biorefinery Approach for Aerogels.

Authors:  Tatiana Budtova; Daniel Antonio Aguilera; Sergejs Beluns; Linn Berglund; Coraline Chartier; Eduardo Espinosa; Sergejs Gaidukovs; Agnieszka Klimek-Kopyra; Angelika Kmita; Dorota Lachowicz; Falk Liebner; Oskars Platnieks; Alejandro Rodríguez; Lizeth Katherine Tinoco Navarro; Fangxin Zou; Sytze J Buwalda
Journal:  Polymers (Basel)       Date:  2020-11-24       Impact factor: 4.329

Review 2.  Deconstruction and Reassembly of Renewable Polymers and Biocolloids into Next Generation Structured Materials.

Authors:  Blaise L Tardy; Bruno D Mattos; Caio G Otoni; Marco Beaumont; Johanna Majoinen; Tero Kämäräinen; Orlando J Rojas
Journal:  Chem Rev       Date:  2021-08-20       Impact factor: 72.087

3.  Gradual hydrophobization of silica aerogel for controlled drug release.

Authors:  Nir Ganonyan; Galit Bar; Raz Gvishi; David Avnir
Journal:  RSC Adv       Date:  2021-02-17       Impact factor: 3.361

4.  Chitosan Based Aerogels with Low Shrinkage by Chemical Cross-Linking and Supramolecular Interaction.

Authors:  Sizhao Zhang; Qi Xiao; Yunyun Xiao; Zhengquan Li; Shixian Xiong; Feng Ding; Junpeng He
Journal:  Gels       Date:  2022-02-18

5.  Silica-Resorcinol-Melamine-Formaldehyde Composite Aerogels as High-Performance Thermal Insulators.

Authors:  Romain Civioc; Wim J Malfait; Marco Lattuada; Matthias M Koebel; Sandra Galmarini
Journal:  ACS Omega       Date:  2022-04-21

6.  Biomimetic Light-Driven Aerogel Passive Pump for Volatile Organic Pollutant Removal.

Authors:  Sarka Drdova; Shanyu Zhao; Marianna Giannakou; Deeptanshu Sivaraman; Natalia Guerrero-Alburquerque; Anne Bonnin; Robin Pauer; Zhengyuan Pan; Emanuel Billeter; Gilberto Siqueira; Zhihui Zeng; Matthias M Koebel; Wim J Malfait; Jing Wang
Journal:  Adv Sci (Weinh)       Date:  2022-02-23       Impact factor: 16.806

7.  Ureido Functionalization through Amine-Urea Transamidation under Mild Reaction Conditions.

Authors:  Natalia Guerrero-Alburquerque; Shanyu Zhao; Daniel Rentsch; Matthias M Koebel; Marco Lattuada; Wim J Malfait
Journal:  Polymers (Basel)       Date:  2021-05-14       Impact factor: 4.329

8.  Insights into the Role of Biopolymer Aerogel Scaffolds in Tissue Engineering and Regenerative Medicine.

Authors:  Esam Bashir Yahya; A A Amirul; Abdul Khalil H P S; Niyi Gideon Olaiya; Muhammad Omer Iqbal; Fauziah Jummaat; Atty Sofea A K; A S Adnan
Journal:  Polymers (Basel)       Date:  2021-05-17       Impact factor: 4.329

  8 in total

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