Lignin as Green Filler in Polymer Composites: Development Methods, Characteristics, and Potential Applications

Author:

Ridho Muhammad Rasyidur12ORCID,Agustiany Erika Ayu2ORCID,Rahmi Dn Muslimatul12ORCID,Madyaratri Elvara Windra12ORCID,Ghozali Muhammad3ORCID,Restu Witta Kartika3ORCID,Falah Faizatul1ORCID,Rahandi Lubis Muhammad Adly1ORCID,Syamani Firda Aulya1ORCID,Nurhamiyah Yeyen1ORCID,Hidayati Sri4ORCID,Sohail Asma5ORCID,Karungamye Petro6ORCID,Nawawi Deded Sarip2ORCID,Iswanto Apri Heri78ORCID,Othman Nadras9ORCID,Mohamad Aini Nor Anizah9,Hussin M. Hazwan10ORCID,Sahakaro Kannika11ORCID,Hayeemasae Nabil11ORCID,Ali Muhammad Qasim12ORCID,Fatriasari Widya1ORCID

Affiliation:

1. Research Center for Biomass and Bioproducts, National Research and Innovation Agency (BRIN), Jl Raya Bogor KM 46 Cibinong, Bogor 16911, Indonesia

2. Department of Forest Products, Faculty of Forestry and Environment, IPB University, Bogor 16680, Indonesia

3. Research Center for Chemistry, National Research and Innovation Agency (BRIN), Kawasan PUSPIPTEK Serpong, Tangerang Selatan 15314, Indonesia

4. Department of Agro-Industrial Technology, Universitas Lampung, Lampung, Indonesia

5. Department of Chemistry, Lahore College for Women University, Jail Road, Lahore, Pakistan

6. Department of Chemistry, University of Dodoma, Dodoma, Tanzania

7. Department of Forest Product, Faculty of Forestry, Universitas Sumatera Utara, Medan 20155, Indonesia

8. JATI-Sumatran Forestry Analysis Study Center, Jl. Tridarma Ujung No. 1, Kampus USU, Medan 20155, Indonesia

9. School of Material and Mineral Resources Engineering, Engineering Campus, Universiti Sains Malaysia, Nibong Tebal 14300, Penang, Malaysia

10. School of Chemical Science, Universiti Sains Malaysia, Minden 11800, Penang, Malaysia

11. Department of Rubber Technology and Polymer Science, Faculty of Science and Technology, Prince of Songkla University, Pattani Campus, Pattani 94000, Thailand

12. Institute of Food Science and Nutrition, University of Sargodha, Sargodha 40100, Punjab, Pakistan

Abstract

After cellulose, lignin is the most commonly used natural polymer in green biomaterials. Pulp and paper mills and emerging cellulosic biorefineries are the main sources of technical lignin. However, only 2–5% of lignin has been converted into biomaterials. Making lignin-based polymer biocomposites to replace petroleum-based composites has piqued the interest of many researchers worldwide due to the positive environmental impact of traditional composites over time. In composite development, lignin is being used as a filler in commercial polymers to improve biodegradability and possibly lower production costs. As a natural polymer, lignin may have different properties depending on the isolation method and source, affecting polymer-based composites. The application has been affected by the characteristics of lignin and the uniform distribution of lignin in polymers. The review’s goal was to provide an overview of technical lignin extraction, properties, and its potential appropriate utilization. It was also planned to revisit the lignin-based composites’ preparation procedure as well as their composite characteristics. Solvent casting and extrusion methods are used to fabricate lignin from polymeric matrices such as polypropylene, epoxy, polyvinyl alcohol, polylactic acid, starch, wood fiber, natural rubber, and chitosan. Packaging, biomedical materials, automotive, advanced biocomposites, flame retardant, and other applications for lignin-based composites has existed. As a result, the technology is still being refined to increase the performance of lignin-based biocomposites in several applications. This review could assist explain lignin’s position as a composite additive, which could lead to more efficient processing and application strategies.

Funder

Ministry of Research and Technology/National Research and Innovation Agency 2021 Fiscal Year

Publisher

Hindawi Limited

Subject

General Engineering,General Materials Science

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