西安交通大学能源与动力工程学院,710049,西安
作者简介:彭亚雯(2001—),女,博士生;
兰申玉(通信作者),女,副教授,博士生导师。
收稿:2025-05-21,
纸质出版:2026-01-10
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彭亚雯, 杨龙, 兰申玉, 等. 维度调控对铁酸铋压电催化活性与过氧化氢产率的影响[J]. 西安交通大学学报, 2026,60(1):63-71.
PENG Yawen, YANG Long, LAN Shenyu, et al. Effect of Dimensional Regulation on the Piezocatalytic Activity and Hydrogen Peroxide Yield of Bismuth Ferrite[J]. Journal of Xi'an Jiaotong University, 2026, 60(1): 63-71.
彭亚雯, 杨龙, 兰申玉, 等. 维度调控对铁酸铋压电催化活性与过氧化氢产率的影响[J]. 西安交通大学学报, 2026,60(1):63-71. DOI: 10.7652/xjtuxb202601007.
PENG Yawen, YANG Long, LAN Shenyu, et al. Effect of Dimensional Regulation on the Piezocatalytic Activity and Hydrogen Peroxide Yield of Bismuth Ferrite[J]. Journal of Xi'an Jiaotong University, 2026, 60(1): 63-71. DOI: 10.7652/xjtuxb202601007.
为了阐明压电催化剂维度对压电催化性能的影响,利用水热法
分别合成了一维线状和二维片状铁酸铋(BiFeO
3
)压电材料,并系统研究了BiFeO
3
在低频超声振动下压电催化原位产过氧化氢(H
2
O
2
)的性能和机制。结果表明:线状BiFeO
3
的H
2
O
2
产率为2553.5μmol·g
-1
·h
-1
,高于片状BiFeO
3
的2078.9μmol·g
-1
·h
-1
,表明形貌对压电催化性能具有显著影响;相对于二维片状,一维线状BiFeO
3
在外力作用下更易形变弯曲,从而产生更强的压电响应、更高的压电电势、更低的界面电阻及更大的压电电流;·OH、·
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366761&type=
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366761&type=small
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366761&type=middle
、电子和空穴在H
2
O
2
生成过程中均起到重要作用,线状BiFeO
3
压电催化原位产生H
2
O
2
同时来源于水氧化和氧还原路径。研究通过“材料结构设计-催化性能测试-内在性质表征-反应机制探索”四维关联模型,为压电催化剂设计提供跨尺度优化策略,可为H
2
O
2
高效原位产生提供参考。
To elucidate the influence of piezoelectric catalyst dimensions on piezocatalytic performance,one-dimensional wire-like and two-dimensional sheet-like bismuth ferrite (BiFeO
3
)piezoelectric materials are synthesized using a hydrothermal method.The performance and mechanism of in-situ H
2
O
2
generation via piezocatalysis by BiFeO
3
under low-frequency ultrasonic vibration are systematically investigated.The findings reveal that the H
2
O
2
yield of wire-like BiFeO
3
is 2553.5μmol·g
-1
·h
-1
,higher than the 2078.9 μmol·g
-1
·h
-1
yield of sheet-like BiFeO
3
,indicating that morphology significantly affects piezocatalytic performance.Compared to the two-dimensional sheets,the one-dimensional wire-like BiFeO
3
is more prone to deformation and bending un
der external force,resulting in a stronger piezoelectric response,higher piezoelectric potential,lower interfacial resistance,and larger piezoelectric current ·OH,·
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366733&type=
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366733&type=small
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=112366733&type=middle
,electrons,and holes all play important roles in the H
2
O
2
generation process.The H
2
O
2
in-situ
production via piezocatalysis by wire-like BiFeO
3
originates from both water oxidation and oxygen reduction pathways.Through a four dimensional correlation model of “material structure design-catalytic performance testing-intrinsic property characterization-reaction mechanism exploration”.It provides a cross-scale optimization strategy for the design of piezoelectric catalysts,offering a reference for the efficient
in-situ
production of H
2
O
2
.
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