Utilization of Spent Coffee Grounds as a Sustainable Resource for the Synthesis of Bioplastic Composites with Polylactic Acid, Starch, and Sucrose

Author:

Masssijaya Sri Yustikasari1ORCID,Lubis Muhammad Adly Rahandi2ORCID,Nissa Rossy Choerun2,Nurhamiyah Yeyen2ORCID,Nugroho Pramono2,Antov Petar3ORCID,Lee Seng-Hua4ORCID,Papadopoulos Antonios N.5ORCID,Kusumah Sukma Surya2ORCID,Karlinasari Lina1ORCID

Affiliation:

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

2. Research Center for Biomass and Bioproducts, National Research and Innovation Agency (BRIN), Jalan Raya Bogor Km. 46, Bogor 16911, Indonesia

3. Faculty of Forest Industry, University of Forestry, 1797 Sofia, Bulgaria

4. Department of Wood Industry, Faculty of Applied Sciences, Universiti Teknologi MARA (UiTM), Cawangan Pahang Kampus Jengka, Shah Alam 26400, Malaysia

5. Laboratory of Wood Chemistry and Technology, Department of Forestry and Natural Environment, International Hellenic University, 661 00 Drama, Greece

Abstract

Polylactic Acid (PLA) is a biodegradable polymer, but the cost of PLA is not competitive compared to polyolefins. The development of bioplastic composites by blending PLA with spent coffee grounds (SCG) and thermoplastic starch (TPS) is an effective way to reduce the cost of PLA. This study aimed to investigate and evaluate the feasibility of using SCG to develop bioplastic composite materials with a blend of PLA and TPS. Bioplastics were fabricated with various SCG contents (5, 10, 15 wt%). The physical and mechanical characteristics of the bioplastic composite decreased as the SCG content increased owing to the higher aggregation caused by SCG dust. However, the bioplastics manufactured with the addition of SCG exhibited enhanced crystallinity, resulting in enhanced thermal properties compared to the composites without SCG. The best characteristics of bioplastics, obtained with a 5% SCG addition, were as follows: water vapor transmission rate of 1276 g d/m2, water vapor permeability (WVP) of 1.86256 × 10−7 g/ms Pa, Young’s modulus of 420 MPa, elongation of 2.59%, and tensile strength of 5 MPa. Based on the results obtained, it can be concluded that the addition of SCG is not recommended for improving the physical and mechanical properties of bioplastics. However, owing to its large content of organic compounds, SCG represents a promising and low-cost functional material that can be exploited in the development of various value-added products.

Funder

Management Talent Research Centre for Biomass

Publisher

MDPI AG

Subject

Engineering (miscellaneous),Ceramics and Composites

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