TY - JOUR A1 - Wachsmann, Sebastian B. A1 - Ruf, Matthias A1 - Prinz, Carsten A1 - Oehlsen, Nina A1 - Zhou, Xiaoru A1 - Dyballa, Michael A1 - Arweiler, Christine A1 - Leistner, Philip A1 - Steeb, Holger A1 - Garrecht, Harald A1 - Laschat, Sabine A1 - Stegbauer, Linus T1 - Chitin/Chitosan Biocomposite Foams with Chitins from Different Organisms for Sound Absorption N2 - Foams are widely used for applications in construction, energy absorption, and building insulation. We developed sustainable chitin/chitosan-based foams derived from snow crab and Aspergillus niger (α-chitin) and from squid (β-chitin), which were obtained via a “shake and bake” process. The foam structure, mechanical, thermophysical, sound absorption, and flammability properties were studied. Stable foams were obtained from snow crab and squid chitin, whereas A.niger-based foams were inhomogeneous. Foams derived from the former biomass sources displayed densities of 0.07−0.30 g/cm3 and bulk porosities of 78−94% with only a minimal number of closed pores. According to mercury porosimetry (MP) and X-ray computed microtomography (μXRCT), pore sizes ranged from 3 μm to 1.5 mm, with the majority of pores being larger than 400 μm. In mechanical compression tests, β-chitin-based foams showed higher specific compressive strength and modulus (up to 0.1 * = 9.00 MPa/E* = 107.37 MPa) compared to the α-chitin-based series. Dynamic vapor sorption (DVS) measurements revealed that the β-chitin (from squid) series overall took up more water vapor (≤40 wt %) than the α-chitin (from snow crab) series (≤33 wt %). Flammability tests showed that the developed foams were suitable for fire protection class E, superior to common polyurethane (PU) foams, and sound absorption tests showed promising results for applications only little influenced by humidity. KW - Chitin KW - Foam KW - Biocomposite KW - Sound absorption KW - Flammability KW - Mercury porosimetry KW - Dynamic vapor sorption PY - 2024 DO - https://doi.org/10.1021/acssuschemeng.4c00044 VL - 12 IS - 32 SP - 11879 EP - 11890 PB - American Chemical Society (ACS) AN - OPUS4-60819 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Zauer, M. A1 - Prinz, Carsten A1 - Adolphs, J. A1 - Emmerling, Franziska A1 - Wagenführ, A. T1 - Sorption surfaces and energies of untreated and thermally modified wood evaluated by means of excess surface work (ESW) N2 - Water vapor sorption surface areas and sorption energies of untreated and thermally modified Norway spruce [Picea abies (L.) Karst.], sycamore maple (Acer pseudoplatanus L.) and European ash (Fraxinus excelcior L.) were investigated by means of dynamic vapor sorption (DVS) measurements and excess surface work (ESW) evaluation method, respectively. Adsorption and desorption experiments in the hygroscopic range and desorption tests from water saturation were conducted. Thermodynamically, ESW is the sum of the surface free energy and the isothermal isobaric work of sorption. From the amount adsorbed in the first Minimum a specific surface area similar to the BET surface area can be obtained. The results show that untreated spruce has a significantly higher specific water vapor Sorption surface and sorption energy compared to both hardwoods maple and ash. Thermal modification of the woods leads to a significant reduction of water vapor Sorption surface and sorption energy. The determined surface area and energy are higher in desorption direction than in adsorption direction, whereby the highest values in Desorption direction from water saturation, especially for maple and ash, were obtained. The surface areas calculated by means of the ESW method are similar to the surface areas calculated by means of the BET method, particularly in adsorption direction. KW - Excess surface work KW - Dynamic vapor sorption KW - Wood KW - BET PY - 2018 DO - https://doi.org/10.1007/s00226-018-1021-2 SN - 1432-5225 SN - 0043-7719 VL - 52 IS - 4 SP - 957 EP - 969 PB - Springer CY - Berlin Heidelberg AN - OPUS4-44975 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -