NaCl-assisted Ni(SeO3)·xH2O/NC synthesis as high-performance co-catalyst for highly efficient photocatalytic hydrogen evolution

Rapid recombination hinders the optimal photocatalytic hydrogen evolution reaction (PHER) performance of titanium dioxide (TiO 2 ). Herein, a hydrated nickel selenite/nitrogen-doped carbon (Ni(SeO 3 )·xH 2 O/NC) was combined with TiO 2 to achieve high PHER performance by varying the amount of sodium chloride (NaCl) during the synthesis of Ni(SeO 3 )·xH 2 O/NC. The addition of NaCl change the morphology of Ni(SeO 3 )·xH 2 O/NC from a dense layer into a highly transparent and lace-like layer. Ni(SeO 3 )·xH 2 O/NC exhibits a narrow band gap (0.7–1 eV), with the optimized 0.5Ni(SeO 3 )·xH 2 O/NC exhibits the lower band gap of 0.75 eV and also suppressed recombination. Combining with TiO 2 narrowed the band gap of composite from 3.27 eV to 3.12 eV and decreased charge-transfer resistance. Consequently, 0.5Ni(SeO 3 )·xH 2 O/NC/TiO 2 achieved an exceptional PHER activity at 16,832 µmol·g –1 (4208 µmol·g –1 ·h –1 ), which further enhanced to 56,081 µmol·g –1 (14,020 µmol·g –1 ·h –1 ) by the addition of platinum. 0.5Ni(SeO 3 )·xH 2 O/NC/TiO 2 demonstrated good stability over 16 h, with performance restored upon the addition of fresh methanol. This strategy provides a simple approach to producing a co-catalyst by NaCl addition during synthesis for high PHER performance.

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Journal
Nano-Structures & Nano-Objects
Published
2026-09-22
DOI
https://doi.org/10.1016/j.nanoso.2026.101759
Primary Topic
Advanced Photocatalysis Techniques
Type
article
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article

NaCl-assisted Ni(SeO3)·xH2O/NC synthesis as high-performance co-catalyst for highly efficient photocatalytic hydrogen evolution

Didik Prasetyoko, Diana Vanda Wellia, W. B. K. Putri, Yuly Kusumawati et al.
Nano-Structures & Nano-Objects
Advanced Photocatalysis Techniques
article

NaCl-assisted Ni(SeO3)·xH2O/NC synthesis as high-performance co-catalyst for highly efficient photocatalytic hydrogen evolution

Didik Prasetyoko, Diana Vanda Wellia, W. B. K. Putri, Yuly Kusumawati, Gagus Ketut Sunnardianto, Riki Subagyo, Hasliza Bahruji
article en

Abstract

Rapid recombination hinders the optimal photocatalytic hydrogen evolution reaction (PHER) performance of titanium dioxide (TiO 2 ). Herein, a hydrated nickel selenite/nitrogen-doped carbon (Ni(SeO 3 )·xH 2 O/NC) was combined with TiO 2 to achieve high PHER performance by varying the amount of sodium chloride (NaCl) during the synthesis of Ni(SeO 3 )·xH 2 O/NC. The addition of NaCl change the morphology of Ni(SeO 3 )·xH 2 O/NC from a dense layer into a highly transparent and lace-like layer. Ni(SeO 3 )·xH 2 O/NC exhibits a narrow band gap (0.7–1 eV), with the optimized 0.5Ni(SeO 3 )·xH 2 O/NC exhibits the lower band gap of 0.75 eV and also suppressed recombination. Combining with TiO 2 narrowed the band gap of composite from 3.27 eV to 3.12 eV and decreased charge-transfer resistance. Consequently, 0.5Ni(SeO 3 )·xH 2 O/NC/TiO 2 achieved an exceptional PHER activity at 16,832 µmol·g –1 (4208 µmol·g –1 ·h –1 ), which further enhanced to 56,081 µmol·g –1 (14,020 µmol·g –1 ·h –1 ) by the addition of platinum. 0.5Ni(SeO 3 )·xH 2 O/NC/TiO 2 demonstrated good stability over 16 h, with performance restored upon the addition of fresh methanol. This strategy provides a simple approach to producing a co-catalyst by NaCl addition during synthesis for high PHER performance.

Nano-Structures & Nano-ObjectsVol. 48
Sepuluh Nopember Institute of Technology (ID), Universiti Brunei Darussalam (BN), Centre for Advanced Material and Energy Sciences (BN), Andalas University (ID)
Openalex Percentile: Top 29%
Advanced Photocatalysis Techniques
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