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◆ ACS Sustainable Chemistry & Engineering2026-05-28· Succinic anhydride

Tuning Eco-Foaming of Kraft Lignin through Esterification: Effects on Chemical Structures and Thermal Stability

Qiangu Yan, Neda Arabzadeh Nosratabad, Daniel Franke, Caixia Wan, Timothy Ketelboeter, Peter Kitin, Zhiyong Cai

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide This study explores how anhydride esterification of kraft lignin (KL) influences an “eco-foaming” process that transforms 100% KL into rigid foams. KL was reacted with maleic (MA), succinic (SA), or phthalic (PA) anhydride in acetone. FTIR analysis confirmed hydroxyl consumption (diminished 3496/3372/3280 cm –1 bands) and formation of ester bonds at approximately 1712/1267/1130/1030 cm –1 . The degrees of esterification (DE) ranged around 8.2% for MA, 7.9% for SA, and 6.3% for PA. Thermal analysis showed slightly higher glass-transition temperatures ( T g ) and greater stability above 300 °C. When heated at 240 °C, the MA-KL foams exhibited smaller pores (∼23 μm), higher density (∼0.32 g·cm –3 ), and more closed-cell structures, which led to increased compressive strength and reduced thermal conductivity (0.043 ± 0.002 W·m –1 ·K –1 ) compared to unmodified KL foams (∼84 μm, 0.26 g·cm –3, 0.076 ± 0.005 W·m –1 ·K –1 ). TGA revealed improved thermal degradation resistance between 400 and 600 °C, likely due to denser, more closed-cell architectures and potential heat-induced cross-linking. Overall, esterification provides a controllable means to modify pore structure and foam performance, yielding lignin-based foams with enhanced mechanical strength, thermal insulation, and stability, suitable for sustainable building applications.
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Tuning Eco-Foaming of Kraft Lignin through Esterification: Effects on Chemical Structures and Thermal Stability — 科研速览 Science Skim