MRS Meetings and Events

 

MF03.11.22 2024 MRS Spring Meeting

Structure-Property Relationships of Lignin-Based Structural Building Materials

When and Where

Apr 25, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Malavika Bagepalli1,Priscilla Pieters2,Jian Zhang1,Kevin Miller3,Hemant Choudhary1,4,Sumanjeet Kaur1

Lawrence Berkeley National Laboratory1,University of California, Berkeley2,Murray State University3,Sandia National Laboratories4

Abstract

Malavika Bagepalli1,Priscilla Pieters2,Jian Zhang1,Kevin Miller3,Hemant Choudhary1,4,Sumanjeet Kaur1

Lawrence Berkeley National Laboratory1,University of California, Berkeley2,Murray State University3,Sandia National Laboratories4
Buildings enable long-term storage of carbon due to their long lifespans (&gt; 50 years). Engineered wood, including wood biopolymer composites, is a potential replacement for concrete and steel in construction to limit CO<sub>2</sub> emissions. However, current formaldehyde-based binders used in engineered wood are toxic and have environmental concerns, so there is a need to explore bio-based, formaldehyde-free binders. Lignin is one of the most abundant biopolymers on earth and is a natural glue which holds up a plant’s structural framework. Currently, lignin (Kraft) is treated as a low-value waste product by the paper and pulp industry, with a significant amount burned for fuel. The use of lignin from waste streams and agricultural waste in building materials emerges as a cost-effective solution. However, the chemical composition of lignin is sensitive to lignocellulose source and method of extraction, leading to inhomogeneity. Extracting lignin through ionic liquids (IL) or deep eutectic solvents (DES), are environmentally friendly and energy efficient. However, the effects of lignin variability on adhesive performance have not been well explored. Specifically, ideal characteristics for the development of structural wood composites have not been systematically studied. To address this gap, this study aims to develop structure-property relationships of lignin-based adhesives from different sources and extraction methods. The study includes a comprehensive baseline characterization of the different lignin and repeated mechanical strength measurements of lignin-based adhesives.

Keywords

chemical composition | composite | nuclear magnetic resonance (NMR)

Symposium Organizers

Yuanyuan Li, KTH Royal Institute of Technology
Kunal Masania, TU Delft
Gustav Nystrom, EMPA
Eleftheria Roumeli, University of Washington

Session Chairs

Kunal Masania
Eleftheria Roumeli

In this Session

MF03.11.01
Advancements in Biopolymer-Based Materials for Sustainable Packaging Applications

MF03.11.02
Scalable Interfacial Polymerization of Thermally Processable Biodegradable Polyesters

MF03.11.03
Water-Based Sustainable Ink Composed of Regenerated Silk Fibroin and Upconversion Nanoparticles for Printing/Painting on Arbitrary Surfaces

MF03.11.05
Facile Preparation of Anti-Mold Wood Fibers for Integration into Biocomposites

MF03.11.06
Designing Cellulose Nanomaterials to Craft Environmentally Conscious Polyurethane Nanocomposites

MF03.11.07
Understanding the Influence of Morphology and Chemical Compositions of Algae on the Hydration Reactions of Portland Cement

MF03.11.08
X-Ray Tomography for Visualizing the Internal Structure of Paper Products and its Correlations with Mechanical Properties

MF03.11.09
Oil-Paper-Umbrella-Inspired Passive Radiative Cooling Using Recycled Packaging Foam

MF03.11.10
A Concept of Haze Matching for Cloaking of Bulk Anticounterfeiting Patterns Made of Silk Fibroin-Based Upconversion Nanocomposites

MF03.11.11
Vat Photopolymerization-Based Multi-Material 3D Printing of Overhangs with Highly Removable and Recyclable Thiol-ene Photopolymer Supports

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Publishing Alliance

MRS publishes with Springer Nature