Journal of Inorganic Materials, Volume. 39, Issue 9, 979(2024)
[1] FU X, ZHANG J, KANG Y. Recent advances and challenges of electrochemical ammonia synthesis[J]. Chem Catalysis, 2590(2022).
[2] QING G, GHAZFAR R, JACKOWSKI S T et al. Recent advances and challenges of electrocatalytic N2 reduction to ammonia[J]. Chemical Reviews, 5437(2020).
[3] BRUCH Q J, CONNOR G P, MCMILLION N D et al. Considering electrocatalytic ammonia synthesis
[4] MACFARLANE D R, CHEREPANOV P V, CHOI J et al. A roadmap to the ammonia economy[J]. Joule, 1186(2020).
[5] JIANG L, FU X. An ammonia-hydrogen energy roadmap for carbon neutrality: opportunity and challenges in China[J]. Engineering, 1688(2021).
[6] ZHENG J, JIANG L, LYU Y et al. Green synthesis of nitrogen-to- ammonia fixation: past, present, and future[J]. Energy & Environmental Materials, 452(2022).
[8] CHEN W, XU Y, LIU J et al. Recent developments in Ti-based nanocatalysts for electrochemical nitrate-to-ammonia conversion[J]. Inorganic Chemistry Frontiers, 4901(2023).
[9] CHEN W, YANG X, CHEN Z et al. Emerging applications, developments, prospects, and challenges of electrochemical nitrate-to-ammonia conversion[J]. Advanced Functional Materials, 2300512(2023).
[11] SONG W, YUE L, FAN X et al. Recent progress and strategies on the design of catalysts for electrochemical ammonia synthesis from nitrate reduction[J]. Inorganic Chemistry Frontiers, 3489(2023).
[12] GUO H, YANG P, YANG Y et al. Vacancy-mediated control of local electronic structure for high-efficiency electrocatalytic conversion of N2 to NH3[J]. Small, 2309007(2023).
[13] REICHLE S, FELDERHOFF M, SCHÜTH F. Mechanocatalytic room-temperature synthesis of ammonia from its elements down to atmospheric pressure[J]. Angewandte Chemie International Edition, 26385(2021).
[15] CHEN G F, YUAN Y, JIANG H et al. Electrochemical reduction of nitrate to ammonia
[16] HE J Z, HU H W, ZHANG L M. Current insights into the autotrophic thaumarchaeal ammonia oxidation in acidic soils[J]. Soil Biology and Biochemistry, 146(2012).
[17] XU H, MA Y, CHEN J et al. Electrocatalytic reduction of nitrate a step towards a sustainable nitrogen cycle[J]. Chemical Society Reviews, 2710(2022).
[18] GAO W, XIE K, XIE J et al. Alloying of Cu with Ru enabling the relay catalysis for reduction of nitrate to ammonia[J]. Advanced Materials, 2202952(2023).
[19] WU Z Y, KARAMAD M, YONG X et al. Electrochemical ammonia synthesis
[20] ZHENG W, ZHU L, YAN Z et al. Self-activated Ni cathode for electrocatalytic nitrate reduction to ammonia: from fundamentals to scale-up for treatment of industrial wastewater[J]. Environmental Science & Technology, 13231(2021).
[21] ZHANG X, WANG Y, LIU C et al. Recent advances in non-noble metal electrocatalysts for nitrate reduction[J]. Chemical Engineering Journal, 126269(2021).
[22] DU H, LUO H, JIANG M et al. A review of activating lattice oxygen of metal oxides for catalytic reactions: reaction mechanisms, modulation strategies of activity and their practical applications[J]. Applied Catalysis A: General, 119348(2023).
[23] LING T, ZHANG T, GE B et al. Well-dispersed nickel- and zinc-tailored electronic structure of a transition metal oxide for highly active alkaline hydrogen evolution reaction[J]. Advanced Materials, 1807771(2019).
[24] XU Y, YANG H, CHANG X et al. Introduction to electrocatalytic kinetics[J]. Acta Physico-Chimica Sinica, 2210025(2023).
[26] HAN S, LI H, LI T et al. Ultralow overpotential nitrate reduction to ammonia
[27] LIAO P, KANG J, XIANG R et al. Electrocatalytic systems for NO
[28] YIN H, CHEN Z, XIONG S et al. Alloying effect-induced electron polarization drives nitrate electroreduction to ammonia[J]. Chem Catalysis, 1088(2021).
[29] DU X, HUANG J, ZHANG J et al. Modulating electronic structures of inorganic nanomaterials for efficient electrocatalytic water splitting[J]. Angewandte Chemie International Edition, 4484(2019).
[31] FENG C, ZHANG Z, WANG D et al. Tuning the electronic and steric interaction at the atomic interface for enhanced oxygen evolution[J]. Journal of the American Chemical Society, 9271(2022).
[32] ZHANG Y, ZHENG H, ZHOU K et al. Conjugated coordination polymer as a new platform for efficient and selective electroreduction of nitrate into ammonia[J]. Advanced Materials, 2209855(2023).
[33] REN J T, CHEN L, WANG H Y et al. Water electrolysis for hydrogen production: from hybrid systems to self-powered/catalyzed devices[J]. Energy & Environmental Science, 49(2024).
[34] OGAWA N, IKEDA S. On the electrochemical reduction of nitrate ion in the presence of various metal ions[J]. Analytical Sciences, 1681(1991).
[35] BOESE S W, ARCHER V S. Electrochemical reduction of nitrate in the presence of ytterbium(III)[J]. Journal of Electroanalytical Chemistry and Interfacial Electrochemistry, 273(1982).
[36] YU J, YONG X, CAO A et al. Bi-layer single atom catalysts boosted nitrate-to-ammonia electroreduction with high activity and selectivity[J]. Acta Physico-Chimica Sinica, 2307015(2024).
[37] JING Q, MEI Z, SHENG X et al. 3d orbital electron engineering in oxygen electrocatalyst for zinc-air batteries[J]. Chemical Engineering Journal, 142321(2023).
[39] MOLTVED K A, KEPP K P. The chemical bond between transition metals and oxygen: electronegativity, d-orbital effects, and oxophilicity as descriptors of metal-oxygen interactions[J]. Journal of Physical Chemistry C, 18432(2019).
[40] JIA R, WANG Y, WANG C et al. Boosting selective nitrate electroreduction to ammonium by constructing oxygen vacancies in TiO2[J]. ACS Catalysis, 3533(2020).
[41] QIU W, XIE M, WANG P et al. Size-defined Ru nanoclusters supported by TiO2 nanotubes enable low-concentration nitrate electroreduction to ammonia with suppressed hydrogen evolution[J]. Small, 2300437(2023).
[42] GUO Y, ZHANG R, ZHANG S et al. Pd doping-weakened intermediate adsorption to promote electrocatalytic nitrate reduction on TiO2 nanoarrays for ammonia production and energy supply with zinc-nitrate batteries[J]. Energy & Environmental Science, 3938(2021).
[43] WU H, GUO H, ZHANG F et al. Enhanced localized electron density from PdCu nanoparticle loading on a defective TiO2 support for selective nitrate electroreduction to ammonia[J]. Journal of Materials Chemistry A, 22466(2023).
[44] ZHAO D, MA C, LI J et al. Direct eight-electron NO3- to NH3 conversion: using a Co-doped TiO2 nanoribbon array as a high- efficiency electrocatalyst[J]. Inorganic Chemistry Frontiers, 6412(2022).
[45] DU H, GUO H, WANG K et al. Durable electrocatalytic reduction of nitrate to ammonia over defective pseudobrookite Fe2TiO5 nanofibers with abundant oxygen vacancies[J]. Angewandte Chemie International Edition, e202215782(2023).
[46] DONG S, NIU A, WANG K et al. Modulation of oxygen vacancy and zero-valent zinc in ZnCr2O4 nanofibers by enriching zinc for efficient nitrate reduction[J]. Applied Catalysis B: Environmental, 122772(2023).
[47] LI T, TANG C, GUO H et al.
[48] FAN X, XIE L, LIANG J et al.
[50] WANG Y, LIU C, ZHANG B et al. Self-template synthesis of hierarchically structured Co3O4@NiO bifunctional electrodes for selective nitrate reduction and tetrahydroisoquinolines semi- dehydrogenation[J]. Science China Materials, 2530(2020).
[51] ZHOU N, WANG Z, ZHANG N et al. Potential-induced synthesis and structural identification of oxide-derived Cu electrocatalysts for selective nitrate reduction to ammonia[J]. ACS Catalysis, 7529(2023).
[52] XIAO L, DAI W, MOU S et al. Coupling electrocatalytic cathodic nitrate reduction with anodic formaldehyde oxidation at ultra-low potential over Cu2O[J]. Energy & Environmental Science, 2696(2023).
[53] KANI N C, NGUYEN N H L, MARKEL K et al. Electrochemical reduction of nitrates on CoO nanoclusters-functionalized graphene with highest mass activity and nearly 100% selectivity to ammonia[J]. Advanced Energy Materials, 2204236(2023).
[54] CHEN W, CHEN Z, HUANG Z et al. Modulating the valence electronic structure of Co3O4 to improve catalytic activity of electrochemical nitrate-to-ammonia conversion[J]. Science China Materials, 3901(2023).
[55] NIU Z, FAN S, LI X et al. Tailored electronic structure by sulfur filling oxygen vacancies boosts electrocatalytic nitrogen oxyanions reduction to ammonia[J]. Chemical Engineering Journal, 138890(2023).
[56] CUI Y, DONG A, ZHOU Y et al. Interfacially engineered nanoporous Cu/MnO
[57] XU Y, SHENG Y, WANG M et al. Interface coupling induced built-in electric fields boost electrochemical nitrate reduction to ammonia over CuO@MnO2 core-shell hierarchical nanoarrays[J]. Journal of Materials Chemistry A, 16883(2022).
[58] CAO Y, GUO R, MA M et al. Effects of electron density variation of active sites in CO2 activation and photoreduction: a review[J]. Acta Physico-Chimica Sinica, 2303029(2024).
[59] ZHANG Z, BIAN L, TIAN H et al. Tailoring the surface and interface structures of copper-based catalysts for electrochemical reduction of CO2 to ethylene and ethanol[J]. Small, 2107450(2022).
[60] WANG Y, QIN Y, LI W et al. Controllable NO release for catheter antibacteria from nitrite electroreduction over the Cu-MOF[J]. Transactions of Tianjin University, 275(2023).
[61] POLO-GARZON F, BAO Z, ZHANG X et al. Surface reconstructions of metal oxides and the consequences on catalytic chemistry[J]. ACS Catalysis, 5692(2019).
[62] WANG C, LIU Z, LI C et al. Progress on electrocatalytic reduction of nitrate on copper-based catalysts[J]. Chinese Science Bulletin, 4411(2021).
[63] WANG Y, ZHOU W, JIA R et al. Unveiling the activity origin of a copper-based electrocatalyst for selective nitrate reduction to ammonia[J]. Angewandte Chemie International Edition, 5350(2020).
[64] ZHANG S, LI M, LI J et al. High-ammonia selective metal- organic framework-derived Co-doped Fe/Fe2O3 catalysts for electrochemical nitrate reduction[J]. Proceedings of the National Academy of Sciences, e2115504119(2022).
[65] WANG Z, WEN B, HAO Q et al. Localized excitation of Ti3+ ions in the photoabsorption and photocatalytic activity of reduced rutile TiO2[J]. Journal of the American Chemical Society, 9146(2015).
[66] JIA X, LI J Y, DING S H et al. Synergy effect of Pd nanoparticles and oxygen vacancies for enhancing TiO2 photocatalytic CO2 reduction[J]. Journal of Inorganic Materials, 1301(2023).
[67] WAN J, CHEN W, JIA C et al. Defect effects on TiO2 nanosheets: stabilizing single atomic site Au and promoting catalytic properties[J]. Advanced Materials, 1705369(2018).
[68] FENG T, LI F, HU X et al. Selective electroreduction of nitrate to ammonia
[69] FAN X, ZHAO D, DENG Z et al. Constructing Co@TiO2 nanoarray heterostructure with Schottky contact for selective electrocatalytic nitrate reduction to ammonia[J]. Small, 2208036(2023).
[70] ZHAO X E, LI Z, GAO S et al. CoS2@TiO2 nanoarray: a heterostructured electrocatalyst for high-efficiency nitrate reduction to ammonia[J]. Chemical Communications, 12995(2022).
[71] HE X, LI J, LI R et al. Ambient ammonia synthesis
[72] ZHAO Q, SONG A, DING S et al. Preintercalation strategy in manganese oxides for electrochemical energy storage: review and prospects[J]. Advanced Materials, 2002450(2020).
[73] WANG P, JIN Z, CHEN N et al. Theoretical investigation of Mo doped
[74] ZHANG X, WU D, LIU X et al. Efficient electrocatalytic chlorine evolution under neutral seawater conditions enabled by highly dispersed Co3O4 catalysts on porous carbon[J]. Applied Catalysis B: Environmental, 122594(2023).
[76] HU Z, HAO L, QUAN F et al. Recent developments of Co3O4-based materials as catalysts for the oxygen evolution reaction[J]. Catalysis Science & Technology, 436(2022).
[77] LU D, LIU T, HAN J et al. Yolk-shell composite oxides with binuclear Co(II) sites toward low-overpotential nitrate reduction to ammonia[J]. Chemical Engineering Journal, 146896(2023).
[78] PARASHTEKAR A, BOURGEOIS L, TATIPARTI S S V. Grain boundary segregation of nickel vacancies and space charge zone formation in NiO through interactions among Ni2+, O2-, and Ni3+[J]. Materials Letters, 134743(2023).
[80] ZHANG R, WANG Y, OU B et al.
[81] ZHU H, TANG Y, WANG J J et al. Accelerating electrosynthesis of ammonia from nitrates using coupled NiO/Cu nanocomposites[J]. Chemical Communications, 2184(2024).
[82] WANG Y, LI H, ZHOU W et al. Structurally disordered RuO2 nanosheets with rich oxygen vacancies for enhanced nitrate electroreduction to ammonia[J]. Angewandte Chemie International Edition, e202202604(2022).
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Xin YANG, Chunqiu HAN, Yuehan CAO, Zhen HE, Ying ZHOU.
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Received: Mar. 5, 2024
Accepted: --
Published Online: Dec. 13, 2024
The Author Email: Yuehan CAO (yhcao419@163.com), Ying ZHOU (yzhou@swpu.edu.cn)