Electrosprayed Cellulose Microsphere‐Supported Palladium Catalyst: A Sustainable and Reusable Catalytic System for the Heck Reaction

ABSTRACT As the most abundant renewable biopolymer, cellulose exhibits great potential for the high‐value utilization of agricultural and forestry resources. Herein, palladium‐incorporated cellulose microspheres (Pd@MicroCell) were successfully fabricated via a facile one‐step electrospraying strategy, in which Pd 2+ /cellulose solution was directly sprayed into an aqueous reducing bath containing sodium borohydride (NaBH 4 ). Palladium ions were in situ reduced to metallic Pd 0 nanoparticles and uniformly embedded within the regenerated cellulose matrix simultaneously. The resulting Pd@MicroCell microspheres were systematically characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), X‐ray diffraction (XRD), X‐ray photoelectron spectroscopy (XPS), and thermogravimetric analysis (TGA). The catalyst exhibited exceptional activity toward the Mizoroki‐Heck reaction of various aryl iodides and bromides with acrylates, affording consistent yields above 90% for most aryl iodides. Notably, it could be readily recovered by simple filtration and reused for at least 12 consecutive cycles without significant loss of catalytic activity. Inductively coupled plasma‐atomic emission spectroscopy (ICP‐AES) results demonstrated that the cumulative Pd leaching was ~27% after 12 cycles. The combination of renewable feedstock, facile synthesis, high efficiency, excellent stability, and reusability renders Pd@MicroCell microspheres a highly promising and environmentally benign heterogeneous catalytic system for sustainable chemical synthesis and industrial catalytic applications.

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Publication Details

Journal
Journal of Applied Polymer Science
Published
2026-09-20
DOI
https://doi.org/10.1002/app.71537
Primary Topic
Catalytic Cross-Coupling Reactions
Type
article
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article

Electrosprayed Cellulose Microsphere‐Supported Palladium Catalyst: A Sustainable and Reusable Catalytic System for the Heck Reaction

Linjun Shao, Guiying Xing, Xian‐Man Zhang, Jiabao Fang et al.
Journal of Applied Polymer Science
Catalytic Cross-Coupling Reactions
article

Electrosprayed Cellulose Microsphere‐Supported Palladium Catalyst: A Sustainable and Reusable Catalytic System for the Heck Reaction

Linjun Shao, Guiying Xing, Xian‐Man Zhang, Jiabao Fang, 付张鑫, Yongxuan Bai
article en

Abstract

ABSTRACT As the most abundant renewable biopolymer, cellulose exhibits great potential for the high‐value utilization of agricultural and forestry resources. Herein, palladium‐incorporated cellulose microspheres (Pd@MicroCell) were successfully fabricated via a facile one‐step electrospraying strategy, in which Pd 2+ /cellulose solution was directly sprayed into an aqueous reducing bath containing sodium borohydride (NaBH 4 ). Palladium ions were in situ reduced to metallic Pd 0 nanoparticles and uniformly embedded within the regenerated cellulose matrix simultaneously. The resulting Pd@MicroCell microspheres were systematically characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), X‐ray diffraction (XRD), X‐ray photoelectron spectroscopy (XPS), and thermogravimetric analysis (TGA). The catalyst exhibited exceptional activity toward the Mizoroki‐Heck reaction of various aryl iodides and bromides with acrylates, affording consistent yields above 90% for most aryl iodides. Notably, it could be readily recovered by simple filtration and reused for at least 12 consecutive cycles without significant loss of catalytic activity. Inductively coupled plasma‐atomic emission spectroscopy (ICP‐AES) results demonstrated that the cumulative Pd leaching was ~27% after 12 cycles. The combination of renewable feedstock, facile synthesis, high efficiency, excellent stability, and reusability renders Pd@MicroCell microspheres a highly promising and environmentally benign heterogeneous catalytic system for sustainable chemical synthesis and industrial catalytic applications.

Journal of Applied Polymer Science
Shaoxing University (CN), Zhejiang Medicine (China) (CN)
Responsible consumption and production
Openalex Percentile: Top 21%
Catalytic Cross-Coupling Reactions
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Electrosprayed Cellulose Microsphere‐Supported Palladium Catalyst: A Sustainable and Reusable Catalytic System for the Heck Reaction — Linjun Shao, Guiying Xing, et al. · Journal of Applied Polymer Science (2026) | TGRS Research Map | TGRS