邵丹 教授 博士 陕西省 研究领域: 环保 研究方向: 长寿命低成本电催化电极(析氧/析氯/析臭氧阳极,阴阳双功能电极,抗结垢阴极等),电化学氧化废水处理,循环冷却水电化学除垢,塑料/微塑料电化学降解转化,高值化学品电合成,电解水制氢等 所在单位: 陕西科技大学

基本信息

所在单位:
陕西科技大学
机构细分:
材料科学与工程学院
单位类型:
高等院校
职务:
教授
职称:
教授
最高学历:
博士
专家介绍:
邵丹,河南郑州人,西安交通大学毕业,中国共产党党员,陕西科技大学材料学院副教授,硕士生导师,能源与环境材料系主任,中国化工学会工业水处理专业委员会专家库专家,陕西钛极科达环保科技发展有限责任公司技术负责人,陕西科技大学高水平博士人才。

研究方向涉及长寿命低成本电催化电极(析氧/析氯/析臭氧阳极,阴阳双功能电极,抗结垢阴极等),电化学氧化废水处理,循环冷却水电化学除垢,塑料/微塑料电化学降解转化,高值化学品电合成,电解水制氢等。涉及电催化电极、电化学相关装备的研究成果已实现落地产业化应用。

主持国家自然科学基金(水无常形-基于电磁场的涂层结构调控对阳极性能的影响机制研究)、陕西省自然科学基金(2.5维电化学提高重金属有机复杂体系废水可生化性的研究;含电气石模块的新型磁组装电极对有机废水的电化学氧化过程研究)、横向项目(光伏稳定电解水制氢系统与技术研究)等项目。近年来在国内外材料、电化学、环境化工领域知名期刊上发表论文50余篇,获批发明专利多项,拥有低成本长寿命无铱析氯/析氧阳极等多项非专利技术。

科研能力

研究领域:
环保
研究方向:
长寿命低成本电催化电极(析氧/析氯/析臭氧阳极,阴阳双功能电极,抗结垢阴极等),电化学氧化废水处理,循环冷却水电化学除垢,塑料/微塑料电化学降解转化,高值化学品电合成,电解水制氢等
论文著作:
[1] Attracting magnetic BDD particles onto Ti/RuO2-IrO2 by using a magnet: A novel 2.5-dimensional electrode for electrochemical oxidation wastewater treatment[J]. Chinese Chemical Letters, 2025, 36: 110641. (2.5维金刚石阳极电化学氧化水处理)

[2] Enhanced removal of aromatic emerging contaminants through the electrochemical co-degradation with polystyrene microplastics[J]. Chemical Engineering Journal, 2025, 509 (1): 161535. (微塑料与溶解性新污染物电化学氧化协同降解)

[3] Diamond-like carbon-DSA: Synergistic enhancement of direct and indirect oxidation pathways for superior electrochemical oxidation wastewater treatment[J]. Separation and Purification Technology, 2025, 377: 134496. (新型高性能类金刚石电极作为昂贵金刚石电极的平替)

[4] 电气石促进磁组装电极电化学降解有机废水,中国环境科学, 2025, 45 (04): 1963-1972.

[5] Joule heat assisting electrochemical degradation of polyethylene microplastics melted on anode[J]. Applied Catalysis B: Environment and Energy, 2024, 357 (1): 124281. (电化学高温氧化降解微塑料)

[6] Integrating natural tourmaline with energy conversion ability to magnetically assembled electrode: Boosted electrochemical oxidation wastewater treatment performance[J]. Journal of Environmental Chemical Engineering, 2024, 12: 111664.

[7] New hierarchical Ti/SnO2-PbO2/CNT electrode: Enhanced electrochemical properties and improved electrochemical oxidation towards various real wastewaters[J]. Journal of Water Process Engineering, 2024, 58: 104889.

[8] Variable activity and selectivity for electrochemical oxidation wastewater treatment using a magnetically assembled electrode based on Ti/PbO2 and carbon nanotubes[J]. Separation and Purification Technology, 2022, 301: 122008.

[9] Magnetically assembled electrodes based on Pt, RuO2-IrO2-TiO2 and Sb-SnO2 for electrochemical oxidation of wastewater featured by fluctuant Cl- concentration[J]. Journal of Hazardous Materials, 2022, 421: 126803.

[10] Embedding wasted hairs in Ti/PbO2 anode for efficient and sustainable electrochemical oxidation of organic wastewater[J]. Chinese Chemical Letters, 2022, 33: 1291-1295.

[11] Design of magnetically assembled electrode (MAE) with Ti/PbO2 and heterogeneous auxiliary electrodes (AEs): The functionality of AEs for efficient electrochemical oxidation[J]. Chemical Engineering Journal, 2020, 395: 125145.[12] A modular functionalized anode for efficient electrochemical oxidation of wastewater: Inseparable synergy between OER anode and its magnetic auxiliary electrodes[J]. Journal of Hazardous Materials, 2020, 390: 122174.

[13] New architecture of a variable anode for full-time efficient electrochemical oxidation of organic wastewater with variable Cl− concentration[J]. Applied Surface Science, 2020, 515: 146003.

[14] Polyaniline nanoparticles magnetically coated Ti/Sb–SnO2 electrode as a flexible and efficient electrocatalyst for boosted electrooxidation of biorefractory wastewater[J]. Chemosphere, 2020, 241: 125103.

[15] Utilizing discarded SiC heating rod to fabricate SiC/Sb-SnO2 anode for electrochemical oxidation of wastewater[J]. Chemical Engieering Journal, 2019, 361: 862-873.

[16] Magnetic assembled anode combining PbO2 and Sb-SnO2 organically as an effective and sustainable electrocatalyst for wastewater treatment with adjustable attribution and construction[J]. ACS Applied Materials & Interfaces, 2018, 10 (51): 44385-44395.
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