Pd修饰α-Fe2O3纳米管阵列的结构设计及其光催化性能

  • 周小卫 ,
  • 艾 昕 ,
  • 韩书格 ,
  • 欧阳春
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  • 江苏科技大学 材料科学与工程学院  镇江 212003

收稿日期: 2026-02-09

  修回日期: 2026-07-22

  录用日期: 2026-07-30

  网络出版日期: 2026-08-28

基金资助

国家自然科学基金项目(51605203)

Structural Design and Photocatalytic Performances of Pd-Modified α-Fe2O3 Nanotube Arrays

  • ZHOU, Xiao-Wei
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  • School of Materials Science and Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, China

Received date: 2026-02-09

  Revised date: 2026-07-22

  Accepted date: 2026-07-30

  Online published: 2026-08-28

摘要

为了进一步提升α-Fe2O3的光生载流子分离效率与光电催化活性,本工作创新性地提出在Fe基体上生长高度有序的α-Fe2O3纳米管阵列(NTAs)。采用恒压电流法在NH4F-H2O-EG (EG为乙二醇)电解液体系中制备出高度有序、结构完整性好的α-Fe2O3 NTAs;采用空气-Ar气两步退火工艺(NTAs-air-Ar)原位构筑α-Fe2O3/Fe3O4异质结。研究了α-Fe2O3 NTAs的显微组织结构及阳极氧化时的电解液配比,表征和分析了α-Fe2O3/Fe3O4异质结和Pd修饰α-Fe2O3/Fe3O4异质结结构的微观结构、能带结构和光催化性能。结果表明,Pd修饰α-Fe2O3/Fe3O4异质结光催化材料具有核-管镶嵌结构,能够提供更多的活性位点。在PdCl2溶液中浸渍3 min后的试样(0.15/NTAs-Pd/3试样)具备最佳的光催化性能,其最高峰值电流密度为0.93 mA/cm2,较无Pd负载试样提高约1.3倍,这主要归功于负载Pd能够通过增强光吸收范围、降低界面电荷转移电阻等途径提高光催化效率。以亚甲基蓝为光降解污染源,Pd负载后的α-Fe2O3/Fe3O4异质结试样的光降解性能显著提高,表现出一级反应动力学特征。其中,0.15/NTAs-Pd/3试样的光催化降解率最高,可达83.5%,连续4 cyc循环测试后维持78.5%以上,表明其具有优良的光催化活性及稳定性。

本文引用格式

周小卫 , 艾 昕 , 韩书格 , 欧阳春 . Pd修饰α-Fe2O3纳米管阵列的结构设计及其光催化性能[J]. 金属学报, 0 : 0 . DOI: 10.11900/0412.1961.2026.00053

Abstract

Reviewing the water splitting from TiO2 nanotubes, photocatalysis under visible-light irradiation has been considered an effective and promising approach for sustainable green energy production and organic matter degradation. However, owing to high recombination rates of photoelectron–hole pairs, low electron mobility, and poor conductivity, traditional photocatalysts have faced major challenges, including low photoelectric conversion efficiency and poor repeatability. One-dimensional iron-based nanotubes (α-Fe2O3 nanotube arrays (NTAs)) effectively address these problems because of their narrow 2.1 eV band gap, rapid response to visible light, and over 40% solar-light utilization efficiency. Accordingly, double-walled α-Fe2O3 NTAs were innovatively fabricated by anodizing an Fe substrate, shortening the electron transport distance to accelerate photoelectron–hole separation and migration. The effects of preformed oxide layers and anodizing processes on the characteristics of α-Fe2O3 NTAs were systematically clarified. Results showed that highly ordered α-Fe2O3 NTAs were obtained from an NH₄F–H₂O–ethylene glycol bath, with a shell diameter of ~45 nm and a length of ~3.5 μm. Compared with single-step annealing in air (NTAs-air), two-step annealing in air–Ar (NTAs-air-Ar) improved the crystallinity of the α-Fe2O3 NTAs. Transient photocurrent tests at 1.6 V versus the reversible hydrogen electrode revealed a peak current density of 0.4 mA/cm2 for NTAs-air-Ar, nearly three times that of NTAs-air, primarily because the confined NTA channels reduced the carrier migration distance and promoted directional photoelectron transport. To address the poor conductivity of α-Fe2O3 NTAs, an in situ Pd-doped Fe2O3/Fe3O4 heterojunction was further constructed. Meanwhile, Pd nanoparticles introduced from a PdCl2 bath promoted adsorption onto the α-Fe2O3 NTAs, forming a core–tube heterojunction that provided more catalytically active sites. The optimized sample, prepared with 0.15 mol/L NH4F and immersed in PdCl2 solution for 3 min, was designated 0.15/NTAs-Pd/3 and exhibited the highest peak current density of 0.93 mA/cm2, approximately 1.3 times higher than that of the Pd-free sample. The Pd-inlaid Fe2O3/Fe3O4 heterojunction enhanced the photocatalytic degradation of methylene blue dye via first-order reaction kinetics. The optimized 0.15/NTAs-Pd/3 sample achieved a photodegradation rate of 83.5% and maintained above 78.5% after four stabilization cycles, indicating high photocatalytic activity and reusability.

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