Glucose-derived carbon confinement stabilizes flake-Like ZnSe for high-rate sodium storage

Sodium-ion batteries require anode materials that can sustain rapid Na + transport while tolerating significant volume changes. Here, flake-like ZnSe/C is prepared by freeze-drying a Zn-citrate-derived lamellar precursor with selenium and glucose, followed by one-step selenization. During heating, glucose carbonizes in situ and confines ZnSe nucleation, producing fine ZnSe domains distributed within a disordered carbon-sheet matrix. As a sodium-ion battery anode, ZnSe/C delivers 224.4 mAh g -1 at a high current density of 5.0 A g -1 and retains 192.8 mAh g⁻¹ after 1000 cycles, compared with 43.3 mAh g -1 for directly selenized ZnSe. Electrochemical measurements suggest lower charge-transfer resistance and faster apparent Na+ transport. First-principles calculations using a graphene-like carbon/ZnSe contact show carbon-derived states near the Fermi level and a decrease in the Na migration barrier from 0.513 to 0.447 eV. The results show that carbon confinement improves high-rate durability by limiting ZnSe coalescence and maintaining electronic contact.

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Publication Details

Journal
Nanotechnology
Published
2026-09-07
DOI
https://doi.org/10.1088/1361-6528/aea338
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Glucose-derived carbon confinement stabilizes flake-Like ZnSe for high-rate sodium storage

Gui Chu, Lili Wang, Jinlong Liu, Lei Hu et al.
Nanotechnology
Advancements in Battery Materials
article

Glucose-derived carbon confinement stabilizes flake-Like ZnSe for high-rate sodium storage

Gui Chu, Lili Wang, Jinlong Liu, Lei Hu, Zhu Xiaobo, Xulai Yang, Sheng Liang, Xin Liang, Can Huang
article en

Abstract

Sodium-ion batteries require anode materials that can sustain rapid Na + transport while tolerating significant volume changes. Here, flake-like ZnSe/C is prepared by freeze-drying a Zn-citrate-derived lamellar precursor with selenium and glucose, followed by one-step selenization. During heating, glucose carbonizes in situ and confines ZnSe nucleation, producing fine ZnSe domains distributed within a disordered carbon-sheet matrix. As a sodium-ion battery anode, ZnSe/C delivers 224.4 mAh g -1 at a high current density of 5.0 A g -1 and retains 192.8 mAh g⁻¹ after 1000 cycles, compared with 43.3 mAh g -1 for directly selenized ZnSe. Electrochemical measurements suggest lower charge-transfer resistance and faster apparent Na+ transport. First-principles calculations using a graphene-like carbon/ZnSe contact show carbon-derived states near the Fermi level and a decrease in the Na migration barrier from 0.513 to 0.447 eV. The results show that carbon confinement improves high-rate durability by limiting ZnSe coalescence and maintaining electronic contact.

Nanotechnology
Hefei University (CN), Changsha University of Science and Technology (CN)
University Natural Science Research Project of Anhui Province
Responsible consumption and production
Openalex Percentile: Top 20%
Advancements in Battery Materials
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