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Wang, Hao-Yu
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Publications (5 of 5) Show all publications
Wan, L., Chen, W., Xu, H., Wang, Y., Yuan, J., Zhou, Z. & Sun, S. (2021). A Mild CO2 Etching Method To Tailor the Pore Structure of Platinum-Free Oxygen Reduction Catalysts in Proton Exchange Membrane Fuel Cells. ACS Applied Materials and Interfaces, 13(38), 45661-45669
Open this publication in new window or tab >>A Mild CO2 Etching Method To Tailor the Pore Structure of Platinum-Free Oxygen Reduction Catalysts in Proton Exchange Membrane Fuel Cells
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2021 (English)In: ACS Applied Materials and Interfaces, ISSN 1944-8244, E-ISSN 1944-8252, Vol. 13, no 38, p. 45661-45669Article in journal (Refereed) Published
Abstract [en]

The structural tailoring of pores is essential to high-performance Fe/N/C electrocatalysts for the oxygen reduction reaction (ORR) in proton exchange membrane fuel cells. Current strategies for pore structure engineering are usually accompanied with a drastic change of the intrinsic activity-related surface, which may mask the real effects of the porous structure on ORR activity. Herein, a mild carbon dioxide (CO2) etching method was used to flexibly tailor the pore structure of Fe/N/C electrocatalysts without drastic changes in their surface structure and property. In this way, via employing the Fe/N/C electrocatalysts as a model, the intrinsic impact of the pore structure on ORR activity was revealed. In addition, the CO2 etching method developed a high-quality electrocatalyst (sample Fe/N/C–5% CO2) with polarization performance exceeding that of the commercial Pt/C catalyst in the fuel cell working voltage region (>0.65 V). This work will promote the ongoing intensive studies on the rational design of the pore structures in the Fe/N/C electrocatalysts.

Keywords
fuel cells, oxygen reduction reaction, Fe/N/C electrocatalysts, CO2 etching, pore structure
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-198842 (URN)10.1021/acsami.1c14709 (DOI)000703995900052 ()34524813 (PubMedID)
Available from: 2021-11-25 Created: 2021-11-25 Last updated: 2022-02-25Bibliographically approved
Zhang, P., Wang, Y., You, Y., Yuan, J., Zhou, Z. & Sun, S. (2021). Generation Pathway of Hydroxyl Radical in Fe/N/C-Based Oxygen Reduction Electrocatalysts under Acidic Media. The Journal of Physical Chemistry Letters, 12(32), 7797-7803
Open this publication in new window or tab >>Generation Pathway of Hydroxyl Radical in Fe/N/C-Based Oxygen Reduction Electrocatalysts under Acidic Media
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2021 (English)In: The Journal of Physical Chemistry Letters, E-ISSN 1948-7185, Vol. 12, no 32, p. 7797-7803Article in journal (Refereed) Published
Abstract [en]

The identification of the generation pathway of OH radical during the oxygen reduction reaction (ORR) is critical because it determines which strategy should be adopted to minimize these corrosive species. In this way, researchers can develop a more stable Fe/N/C ORR catalyst or a catalyst layer in the proton exchange membrane fuel cells (PEMFCs). To date, this critical problem has still been unresolved. Herein, the generation of the OH radical during the acidic ORR was mimicked by using two known pathways, that is, the Fenton (and Fenton-like) and the electrochemical reduction of H2O2(H2O2-ECR) process. The latter was determined as the main generation pathway of OH radical below 30 °C. As the temperature surpassed 30 °C, the H2O2-ECR process began to lose its dominance because of the appearance of a third so-far unknown generation pathway. This work lays a basis for future development of radical elimination strategies to stabilize a Fe/N/C ORR catalyst or a catalyst layer in PEMFCs.

National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-198439 (URN)10.1021/acs.jpclett.1c01905 (DOI)000687716600019 ()34375530 (PubMedID)
Available from: 2021-11-09 Created: 2021-11-09 Last updated: 2024-07-04Bibliographically approved
Wang, Y., Shao, Y., Wang, H. & Yuan, J. (2020). Advanced Heteroatom-Doped Porous Carbon Membranes Assisted by Poly(ionic liquid) Design and Engineering. Accounts of materials research, 1(1), 16-29
Open this publication in new window or tab >>Advanced Heteroatom-Doped Porous Carbon Membranes Assisted by Poly(ionic liquid) Design and Engineering
2020 (English)In: Accounts of materials research, E-ISSN 2643-6728, Vol. 1, no 1, p. 16-29Article in journal (Refereed) Published
Abstract [en]

Heteroatom-doped porous carbon membranes (HPCMMs) with a tailor-made pore architecture, chemical composition, atomic structural order, and surface state represent an exciting family of porous carbon materials for diverse potential applications in catalysis, water treatment, biofiltration, energy conversion/storage, and so forth. Conventional porous carbon membranes possess intrinsic structural integrity, interconnectivity, and chemical purity across the atomic-to-macro world and have been popularly incorporated into devices as separators or chemically inert conductive supports, circumventing otherwise the inevitable complicated processing and structure weakness of their fine powderous counterpart. Motivated by the distinguished heteroatom-doping effect that revolutionizes the chemical and physical nature of carbon materials, the HPCMM research surges very recently, and focuses not only on the eminent conductive supports or separators but also on electro(co)catalysts in energy devices. Synergy of the porous nature, incorporation of heteroatoms, and the membrane state creates a vivid profile pattern and new task-specific usage. It is also noteworthy that the inherent structural merits of HPCMMs plus a high electron conductivity imbue them as a reliable binder-free model electrode to derive the intrinsic structure-property relationship of porous carbons in electrochemical environments, excluding the complex and adverse factors in association with polymer binders in carbon powder-based electrodes. HPCMMs are of both intense academic interest and practical value because of their well-defined properties endowed by controllable structure and porosity at both atomic and macroscopic scales in a membrane form. The sole aim of this article is to bring this group of porous carbon materials to the forefront so their comprehensive properties and functions can be better understood to serve the carbon community to address pressing materials challenges in our society.

In this Account, we highlight the latest discovery and proceedings of HPCMMs, particularly the advancements in how to tailor structures and properties of HPCMMs by rational structure design of porous polymer membranes as sacrificial template built up especially from heteroatom-rich poly(ionic liquid)s (PILs). We will also stress the carbonization craft and the state-of-the-art electrochemical applications for HPCMMs. Key factors and thoughts in heteroatom doping and porous systems in HPCMMs are discussed. A future perspective of the challenges and promising potential of HPCMMs is cast on the basis of these achievements.

Keywords
Carbon, Porous materials, Membranes, Electrodes, Polymers
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-195678 (URN)10.1021/accountsmr.0c00010 (DOI)000651107700003 ()33163972 (PubMedID)
Available from: 2021-08-25 Created: 2021-08-25 Last updated: 2022-02-25Bibliographically approved
Wang, Y.-C., Wan, L.-Y., Cui, P.-X., Tong, L., Ke, Y.-Q., Sheng, T., . . . Yuan, J. (2020). Porous Carbon Membrane-Supported Atomically Dispersed Pyrrole-Type Fe-N-4 as Active Sites for Electrochemical Hydrazine Oxidation Reaction. Small, 16(31), Article ID 2002203.
Open this publication in new window or tab >>Porous Carbon Membrane-Supported Atomically Dispersed Pyrrole-Type Fe-N-4 as Active Sites for Electrochemical Hydrazine Oxidation Reaction
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2020 (English)In: Small, ISSN 1613-6810, E-ISSN 1613-6829, Vol. 16, no 31, article id 2002203Article in journal (Refereed) Published
Abstract [en]

The rational design of catalytically active sites in porous materials is essential in electrocatalysis. Herein, atomically dispersed Fe-N-x sites supported by hierarchically porous carbon membranes are designed to electrocatalyze the hydrazine oxidation reaction (HzOR), one of the key techniques in electrochemical nitrogen transformation. The high intrinsic catalytic activity of the Fe-N-x single-atom catalyst together with the uniquely mixed micro-/macroporous membrane support positions such an electrode among the best-known heteroatom-based carbon anodes for hydrazine fuel cells. Combined with advanced characterization techniques, electrochemical probe experiments, and density functional theory calculation, the pyrrole-type Fe-N-4 structure is identified as the real catalytic site in HzOR.

Keywords
Fe-N-4 active sites, fuel cells, hydrazine oxidation, porous carbon membranes, single atom catalysts
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-183651 (URN)10.1002/smll.202002203 (DOI)000539112800001 ()32521114 (PubMedID)
Available from: 2020-07-28 Created: 2020-07-28 Last updated: 2022-02-26Bibliographically approved
Wang, T., Wang, Q., Wang, Y., Da, Y., Zhou, W., Shao, Y., . . . Wang, H. (2019). Atomically Dispersed Semi-Metallic Selenium on Porous Carbon Membrane as an Electrode for Hydrazine Fuel Cells. Angewandte Chemie International Edition, 58(38), 13466-13471
Open this publication in new window or tab >>Atomically Dispersed Semi-Metallic Selenium on Porous Carbon Membrane as an Electrode for Hydrazine Fuel Cells
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2019 (English)In: Angewandte Chemie International Edition, ISSN 1433-7851, E-ISSN 1521-3773, Vol. 58, no 38, p. 13466-13471Article in journal (Refereed) Published
Abstract [en]

Electrochemically functional porous membranes of low cost are appealing in various electrochemical devices used in modern environmental and energy technologies. Herein we describe a scalable strategy to construct electrochemically active, hierarchically porous carbon membranes containing atomically dispersed semi-metallic Se, denoted SeNCM. The isolated Se atoms were stabilized by carbon atoms in the form of a hexatomic ring structure, in which the Se atoms were located at the edges of graphitic domains in SeNCM. This configuration is different from that of previously reported transition/noble metal single atom catalysts. The positively charged Se, enlarged graphitic layers, robust electrochemical nature of SeNCM endow them with excellent catalytic activity that is superior to state-of-the-art commercial Pt/C catalyst. It also has long-term operational stability for hydrazine oxidation reaction in practical hydrazine fuel cell.

Keywords
atomically dispersed, electrocatalysis, hydrazine oxidation, porous carbon membranes, selenium
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-173020 (URN)10.1002/anie.201907752 (DOI)000479614500001 ()31268612 (PubMedID)
Available from: 2019-10-07 Created: 2019-10-07 Last updated: 2022-02-26Bibliographically approved
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