J. Mater. Sci. Technol. ›› 2024, Vol. 203: 227-236.DOI: 10.1016/j.jmst.2024.02.067

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Thermally induced in situ fabrication of TiO2/CN heterojunction dopant for enhancement of hydrogen storage properties of LiAlH4

Guorong Zhanga,1, Jiaxi Liua,1, Sheng Weia,b,1, Fen Xua,*, Lixian Suna,*, Yongpeng Xiaa, Hehui Wanga, Jinfan Wua, Yuan Gaoa, Qiwei Shaoa, Yiting Bua, Yanxun Guana, Lumin Liaoa, Taigen Lianga, Lina Qina   

  1. aGuangxi Key Laboratory of Information Materials & Guangxi Collaborative Innovation Center for Structure and Properties for New Energy and Materials, School of Material Science and Engineering, Guilin University of Electronic Technology, Guilin 541004, China;
    bInstitute of Technology for Carbon Neutrality, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China
  • Received:2023-12-22 Revised:2024-02-05 Accepted:2024-02-16 Published:2024-12-20 Online:2024-12-16
  • Contact: *E-mail addresses: xufen@guet.edu.cn (F. Xu), sunlx@guet.edu.cn (L. Sun) .
  • About author:1These authors contributed equally to this work.

Abstract: Herein, a novel TiO2/CN heterojunction material has been prepared by one-step bubble template-assisted calcination to enhance the hydrogen storage capability of LiAlH4. The TEM, XPS and UPS analysis confirm that a heterostructure is formed between TiO2 and g-C3N4 successfully. The experimental findings indicate that the TiO2/CN significantly enhances the dehydrogenation performance of LiAlH4. For instance, the LiAlH4-7 wt% TiO2/CN starts to dehydrogenize at 76 °C (94 °C less than pure LiAlH4) and releases 6.5 wt% H2 at 200 °C. Meanwhile, LiAlH4-7 wt% TiO2/CN releases 4.9 wt% H2 at 120 °C within 50 min. The mechanism analysis illustrates that AlTi3N is formed in situ during ball-milling. And density functional theory (DFT) calculation results reveal that the AlTi3N can weaken the Al-H bonds in LiAlH4 through interfacial charge transfer. Furthermore, the TiO2/CN heterostructure creates an internal electric field that generates an electron-rich layer. As a result, the negative electron layer at one end of the TiO2/CN heterojunction has an increased affinity for H, which enhances the dehydrogenation reaction of LiAlH4. Clearly, both the TiO2/CN heterostructure and AlTi3N contribute to the improvement of the dehydrogenation properties of LiAlH4.

Key words: Hydrogen storage material, LiAlH4, TiO2, Carbon nitride, Heterojunction