Fine RuCuP Nanoclusters Anchored on TiO2 for Efficient Hydrolysis of Ammonia Borane

Sen Tian , Longyin Zhao , Lan Yang

Journal of Wuhan University of Technology Materials Science Edition ›› 2026, Vol. 41 ›› Issue (2) : 371 -380.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2026, Vol. 41 ›› Issue (2) :371 -380. DOI: 10.1007/s11595-026-3256-3
Advanced Materials
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Fine RuCuP Nanoclusters Anchored on TiO2 for Efficient Hydrolysis of Ammonia Borane
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Abstract

We synthesized Ru1Cu25P7.5/TiO2 catalyst using sodium borohydride (NaBH4) as reductant in a facile strategy. The highly dispersed RuCuP nanoclusters are anchored on the TiO2 surface with an average particle size of 2.62 nm. The catalyst shows excellent catalytic activity when applied to the hydrolysis of AB, which owns a high turnover frequency value of 531.56 molH2molRu−1min−1 and a low activation energy of 46.38 kJ · mol−1, it also exhibits good durability which maintains 61.13% initial activity after five cycles. The high catalytic performance of Ru1Cu25P7.5/TiO2 may be attributed to the synergistic effects between Ru, Cu, and P elements, fine particle size, good dispersion, and the tight adhesion between nanoclusters and carrier.

Keywords

ammonia borane / hydrogen / nanoclusters / transition metal phosphides

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Sen Tian, Longyin Zhao, Lan Yang. Fine RuCuP Nanoclusters Anchored on TiO2 for Efficient Hydrolysis of Ammonia Borane. Journal of Wuhan University of Technology Materials Science Edition, 2026, 41(2): 371-380 DOI:10.1007/s11595-026-3256-3

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References

[1]

Gu BN, Sun T, Wang Y, et al. . Maximizing Hydrogen Production by AB Hydrolysis with Pt@ Cobalt Oxide/N, O-Rich Carbon and Alkaline Ultrasonic Irradiation. Inorganic Chemistry Frontiers, 2022, 9(10): 2 204-2 212 J]

[2]

Baghban A, Habibzadeh S, Zokaee Ashtiani F. Activity of Transition Metals in N-Doped Carbon Electrocatalysts for Hydrogen Evolution Reaction: Insight from Quantum Chemistry Computations. International Journal of Energy Research, 2022, 46(2): 1 637-1 645 J]

[3]

Hou CC, Li Q, Wang CJ, et al. . Ternary Ni-Co-P Nanoparticles as Noble-Metal-Free Catalysts to Boost the Hydrolytic Dehydrogenation of Ammonia-Borane. Energy & Environmental Science, 2017, 10(8): 1 770-1 776 J]

[4]

Song HQ, Cheng YJ, Li BJ, et al. . Carbon Dots and RuP2 Nanohybrid as an Efficient Bifunctional Catalyst for Electrochemical Hydrogen Evolution Reaction and Hydrolysis of Ammonia Borane. ACS Sustainable Chemistry & Engineering, 2020, 8(9): 3 995-4 002 J]

[5]

Yuan M, Zhong ST, Li G, et al. . Architecture of Urchin-like TiO2 Integrated Ultrasmall Rh Nanoparticles with Oxygen Vacancy-Reinforced Electronic Metal-Support Interaction for Boosting Hydrogen Production from Ammonia Borane Hydrolysis. Fuel, 2024, 358: 130 200 J]

[6]

Wei QH, Qiu SJ, Yin CW, et al. . Nitrogen-Doped Carbon Encapsulated Ru-Decorated Co2P Supported on Graphene Oxide as Efficient Catalysts for Hydrogen Generation from Ammonia Borane. Journal of Alloys and Compounds, 2022, 921: 166 207 J]

[7]

Lu D, Yu GF, Li Y, et al. . RuCo NPs Supported on MIL-96 (Al) as Highly Active Catalysts for the Hydrolysis of Ammonia Borane. Journal of Alloys and Compounds, 2017, 694: 662-671 J]

[8]

Chen YF, Feng K, Yuan GT, et al. . Highly Efficient CoNiP Nanoboxes on Graphene Oxide for the Hydrolysis of Ammonia Borane. Chemical Engineering Journal, 2022, 428: 131 219 J]

[9]

Deng J, Zhou XL, Zou JD, et al. . PdCo Alloy Supported on a ZIF-Derived N-Doped Carbon Hollow Polyhedron for Dehydrogenation of Ammonia Borane. ACS Applied Energy Materials, 2022, 5(6): 7 408-7 419 J]

[10]

Kalkan EB, Akbayrak S, Özkar S. Ruthenium (0) Nanoparticles Supported on Nanohafnia: A Highly Active and Long-Lived Catalyst in Hydrolytic Dehydrogenation of Ammonia Borane. Molecular Catalysis, 2017, 430: 29-35 J]

[11]

Xu WJ, Li W, Wen H, et al. . Metal/Metal-Organic Framework Interfacial Ensemble-Induced Dual Site Catalysis towards Hydrogen Generation. Applied Catalysis B: Environmental, 2021, 286: 119 946 J]

[12]

Wu H, Cheng YJ, Fan YP, et al. . Metal-Catalyzed Hydrolysis of Ammonia Borane: Mechanism, Catalysts, and Challenges. International Journal of Hydrogen Energy, 2020, 45(55): 30 325-30 340 J]

[13]

Chandra M, Xu Q. A High-Performance Hydrogen Generation System: Transition Metal-Catalyzed Dissociation and Hydrolysis of Ammonia-Borane. Journal of Power Sources, 2006, 156(2): 190-194 J]

[14]

Zhang H, Gu XJ, Liu PL, et al. . Highly Efficient Visible-Light-Driven Catalytic Hydrogen Evolution from Ammonia Borane Using Non-Precious Metal Nanoparticles Supported by Graphitic Carbon Nitride. Journal of Materials Chemistry A, 2017, 5(5): 2 288-2 296 J]

[15]

Asim M, Zhang SG, Wang YT, et al. . Self-Supporting NiCoP for Hydrogen Generation via Hydrolysis of Ammonia Borane. Fuel, 2022, 318: 123 544 J]

[16]

Li HJ, Yan YF, Feng S, et al. . Highly Efficient Photothermal Difunctional Catalysts to Enhance Ammonia Borane Hydrolysis for Hydrogen Evolution. Energy & Fuels, 2020, 34(12): 16 948-16 955 J]

[17]

Xiong X, Zhou LQ, Yu GF, et al. . Synthesis and Catalytic Performance of a Novel RuCuNi/CNTs Nanocomposite in Hydrolytic Dehydrogenation of Ammonia Borane. International Journal of Hydrogen Energy, 2015, 40(45): 15 521-15 528 J]

[18]

Li YT, Zhang XL, Peng ZK, et al. . Hierarchical Porous g-C3N4 Coupled Ultrafine RuNi Alloys as Extremely Active Catalysts for the Hydrolytic Dehydrogenation of Ammonia Borane. ACS Sustainable Chemistry & Engineering, 2020, 8(22): 8 458-8 468 J]

[19]

Wu H, Cheng YJ, Wang BY, et al. . Carbon Dots-Confined CoP-CoO Nanoheterostructure with Strong Interfacial Synergy Triggered the Robust Hydrogen Evolution from Ammonia Borane. Journal of Energy Chemistry, 2021, 57: 198-205 J]

[20]

Fu ZC, Xu Y, Chan SLF, et al. . Highly Efficient Hydrolysis of Ammonia Borane by Anion (OH, F, Cl)-Tuned Interactions between Reactant Molecules and CoP Nanoparticles. Chemical Communications, 2017, 53(4): 705-708 J]

[21]

Du YS, Liu C, Cheng GZ, et al. . Cuboid Ni2P as a Bifunctional Catalyst for Efficient Hydrogen Generation from Hydrolysis of Ammonia Borane and Electrocatalytic Hydrogen Evolution. Chemistry-An Asian Journal, 2017, 12(22): 2 967-2 972 J]

[22]

Qu B, Tao Y, Yang L, et al. . One-Pot Co-Reduction Synthesis of Orange-like Pd@Co@P Nanoparticles Supported on rGO for Catalytic Hydrolysis of Ammonia Borane. International Journal of Hydrogen Energy, 2021, 46(61): 31 324-31 333 J]

[23]

Zhou X, Meng XF, Wang JM, et al. . Boron Nitride Supported NiCoP Nanoparticles as Noble Metal-Free Catalyst for Highly Efficient Hydrogen Generation from Ammonia Borane. International Journal of Hydrogen Energy, 2019, 44(10): 4 764-4 770 J]

[24]

Wang C, Wang ZL, Wang HL, et al. . Noble-Metal-Free Co@ Co2P/N-Doped Carbon Nanotube Polyhedron as an Efficient Catalyst for Hydrogen Generation from Ammonia Borane. International Journal of Hydrogen Energy, 2021, 46(13): 9 030-9 039 J]

[25]

Yan LT, Jiang HM, Xing YL, et al. . Nickel Metal-Organic Framework Implanted on Graphene and Incubated to be Ultrasmall Nickel Phosphide Nanocrystals Acts as a Highly Efficient Water Splitting Electrocatalyst. Journal of Materials Chemistry A, 2018, 6(4): 1 682-1 691 J]

[26]

Liu P, Rodriguez JA. Catalysts for Hydrogen Evolution from the [NiFe] Hydrogenase to the Ni2P (001) Surface: The Importance of Ensemble Effect. Journal of the American Chemical Society, 2005, 127(42): 14 871-14 878 J]

[27]

Kibsgaard J, Tsai C, Chan KR, et al. . Designing an Improved Transition Metal Phosphide Catalyst for Hydrogen Evolution Using Experimental and Theoretical Trends. Energy & Environmental Science, 2015, 8(10): 3 022-3 029 J]

[28]

Yang BB, Xu JY, Bin D, et al. . Amorphous Phosphatized Ruthenium-Iron Bimetallic Nanoclusters with Pt-like Activity for Hydrogen Evolution Reaction. Applied Catalysis B: Environmental, 2021, 283: 119 583 J]

[29]

Du C, Yang L, Yang FL, et al. . Nest-like NiCoP for Highly Efficient Overall Water Splitting. ACS Catalysis, 2017, 7(6): 4 131-4 137 J]

[30]

Yang J, Cui ZK, Ma JT, et al. . Ru Coated Co Nanoparticles Decorated on Cotton Derived Carbon Fibers as a Highly Efficient and Magnetically Recyclable Catalyst for Hydrogen Generation from Ammonia Borane. International Journal of Hydrogen Energy, 2018, 43(3): 1 355-1 364 J]

[31]

Su LX, Jin YM, Gong D, et al. . The Role of Discrepant Reactive Intermediates on Ru-Ru2P Heterostructure for pH-Universal Hydrogen Oxidation Reaction. Angewandte Chemie International Edition, 2023, 62(2): e202 215 585 J]

[32]

Sun YM, Xue ZQ, Liu QL, et al. . Modulating Electronic Structure of Metal-Organic Frameworks by Introducing Atomically Dispersed Ru for Efficient Hydrogen Evolution. Nature Communications, 2021, 12(1): 1 369 J]

[33]

Lv H, Wei R, Guo XW, et al. . Synergistic Catalysis of Binary RuP Nanoclusters on Nitrogen-Functionalized Hollow Mesoporous Carbon in Hydrogen Production from the Hydrolysis of Ammonia Borane. The Journal of Physical Chemistry Letters, 2021, 12(1): 696-703 J]

[34]

Xu CW, Wang Z, Chen C, et al. . Constructing MOF-199 Anchored RuMoP Nanoparticles as a High-Performance Catalyst for Boosting the Hydrolysis of AB. International Journal of Hydrogen Energy, 2023, 48(39): 14 670-14 680 J]

[35]

Shen YZ, Liu FS, Li WC, et al. D-Band Center Modulation of Supported Ru on Phosphorous Doped Black TiO2 for Efficient Hydrogen Generation[J]. Chemical Engineering Journal, 2024: 153 251

[36]

Zaier I, Eroglu Z, Metin Ö. A Facile Preparation of Graphene Hydrogel-Supported Bimetallic RuM (M: Co, Ni, Cu) Nanoparticles as Catalysts in the Hydrogen Generation from Ammonia Borane. Pure and Applied Chemistry, 2023, 95(6): 655-669 J]

[37]

Gao YX, Zhang HW, Han AJ, et al. . Ru/ZrO2 Catalysts for Transfer Hydrogenation of Levulinic Acid with Formic Acid/Formate Mixtures: Importance of Support Stability. ChemistrySelect, 2018, 3(5): 1 343-1 351 J]

[38]

Huang XY, Liu YY, Wen H, et al. . Ensemble-Boosting Effect of Ru-Cu Alloy on Catalytic Activity towards Hydrogen Evolution in Ammonia Borane Hydrolysis. Applied Catalysis B: Environmental, 2021, 287: 119 960 J]

[39]

Song Q, Wang WD, Hu XW, et al. . Ru Nanoclusters Confined in Porous Organic Cages for Catalytic Hydrolysis of Ammonia Borane and Tandem Hydrogenation Reaction. Nanoscale, 2019, 11(44): 21 513-21 521 J]

[40]

Ruppert AM, Jędrzejczyk M, Sneka-Platek O, et al. . Ru Catalysts for Levulinic Acid Hydrogenation with Formic Acid as a Hydrogen Source. Green Chemistry, 2016, 18(7): 2 014-2 028 J]

[41]

Zhang JP, Li J, Yang LJ, et al. . Efficient Hydrogen Production from Ammonia Borane Hydrolysis Catalyzed by TiO2-Supported RuCo Catalysts. International Journal of Hydrogen Energy, 2021, 46(5): 3 964-3 973 J]

[42]

Jin YC, Chen FY, Wang JL, et al. . Tuning Electronic and Composition Effects in Ruthenium-Copper Alloy Nanoparticles Anchored on Carbon Nanofibers for Rechargeable Li-CO2 Batteries. Chemical Engineering Journal, 2019, 375: 121 978 J]

[43]

Ma XX, Chang YQ, Zhang Z, et al. . Forest-like NiCoP@ Cu3P Supported on Copper Foam as a Bifunctional Catalyst for Efficient Water Splitting. Journal of Materials Chemistry A, 2018, 6(5): 2 100-2 106 J]

[44]

Cao N, Hu K, Luo W, et al. . RuCu Nanoparticles Supported on Graphene: A Highly Efficient Catalyst for Hydrolysis of Ammonia Borane. Journal of Alloys and Compounds, 2014, 590: 241-246 J]

[45]

Cao N, Su J, Luo W, et al. . Graphene Supported Ru@Co Core-Shell Nanoparticles as Efficient Catalysts for Hydrogen Generation from Hydrolysis of Ammonia Borane and Methylamine Borane. Catalysis Communications, 2014, 43: 47-51 J]

[46]

Yang KZ, Zhou LQ, Xiong X, et al. . RuCuCo Nanoparticles Supported on MIL-101 as a Novel Highly Efficient Catalysts for the Hydrolysis of Ammonia Borane. Microporous and Mesoporous Materials, 2016, 225: 1-8 J]

[47]

Akbayrak S, Tonbul Y, Özkar S. Ceria-Supported Ruthenium Nanoparticles as Highly Active and Long-Lived Catalysts in Hydrogen Generation from the Hydrolysis of Ammonia Borane. Dalton Transactions, 2016, 45(27): 10 969-10 978 J]

[48]

Akbayrak S, Tanyildizi S, Morkan İ, et al. . Ruthenium (0) Nanoparticles Supported on Nanotitania as Highly Active and Reusable Catalyst in Hydrogen Generation from the Hydrolysis of Ammonia Borane. International Journal of Hydrogen Energy, 2014, 39(18): 9 628-9 637 J]

[49]

Rakap M. Hydrogen Generation from Hydrolysis of Ammonia Borane in the Presence of Highly Efficient Poly (N-vinyl-2-Pyrrolidone)-Protected Platinum-Ruthenium Nanoparticles. Applied Catalysis A: General, 2014, 478: 15-20 J]

[50]

Fan YR, Li XJ, He XC, et al. . Effective Hydrolysis of Ammonia Borane Catalyzed by Ruthenium Nanoparticles Immobilized on Graphic Carbon Nitride. International Journal of Hydrogen Energy, 2014, 39(35): 19 982-19 989 J]

[51]

Fang Y, Li JL, Togo T, et al. . Ultra-Small Face-Centered-Cubic Ru Nanoparticles Confined within a Porous Coordination Cage for Dehydrogenation. Chem, 2018, 4(3): 555-563 J]

[52]

Rablen PR. Large Effect on Borane Bond Dissociation Energies Resulting from Coordination by Lewis Bases. Journal of the American Chemical Society, 1997, 119(35): 8 350-8 360 J]

[53]

Wang CL, Tuninetti J, Wang Z, et al. . Hydrolysis of Ammonia-Borane over Ni/ZIF-8 Nanocatalyst: High Efficiency, Mechanism, and Controlled Hydrogen Release. Journal of the American Chemical Society, 2017, 139(33): 11 610-11 615 J]

[54]

Peebles LR, Marshall P. High-Accuracy Coupled-Cluster Computations of Bond Dissociation Energies in SH, H2S, and H2O. The Journal of Chemical Physics, 2002, 117(7): 3 132-3 138 J]

[55]

Yang SY, He P, Tian Y, et al. . In Situ Encapsulating Cobalt Phosphide into a Quasi-MOF: A High-Performance Catalyst for Hydrolytic Dehydrogenation of Ammonia Borane. New Journal of Chemistry, 2023, 47(6): 3 151-3 158 J]

[56]

Ghosh S, Kadam SR, Houben L, et al. . Nickel Phosphide Catalysts for Hydrogen Generation through Water Reduction, Ammonia-Borane and Borohydride Hydrolysis. Applied Materials Today, 2020, 20: 100 693 J]

[57]

Wan XQ, Qian DD, Ai LH, et al. . Highly Efficient Peroxymonosulfate Activation by Surface Oxidized Nickel Phosphide with Dual Active Sites. Industrial & Engineering Chemistry Research, 2020, 59(51): 22 040-22 048 J]

[58]

Wei ZH, Liu Y, Peng ZK, et al. . Cobalt-Ruthenium Nanoalloys Parceled in Porous Nitrogen-Doped Graphene as Highly Efficient Difunctional Catalysts for Hydrogen Evolution Reaction and Hydrolysis of Ammonia Borane. ACS Sustainable Chemistry & Engineering, 2019, 7(7): 7 014-7 023 J]

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