负载型Ni-Co-P/CNFs催化剂的制备及释氢性能

李忠 王丽娜 王桂雪 谢广文

引用本文: 李忠, 王丽娜, 王桂雪, 谢广文. 负载型Ni-Co-P/CNFs催化剂的制备及释氢性能[J]. 燃料化学学报, 2015, 43(3): 372-378. shu
Citation:  LI Zhong, WANG Li-na, WANG Gui-xue, XIE Guang-wen. Hydrogen generation from the hydrolysis of sodium borohydride solution over the supported Ni-Co-P/CNFs catalysts[J]. Journal of Fuel Chemistry and Technology, 2015, 43(3): 372-378. shu

负载型Ni-Co-P/CNFs催化剂的制备及释氢性能

    通讯作者: 谢广文,Tel:0532-84022883;E-mail:xiegw@qust.edu.cn。
  • 基金项目:

    山东省自然科学基金(ZR2011EMM005)。 (ZR2011EMM005)

摘要: 以纳米碳纤维(CNFs)为基体材料,采用化学镀法在CNFs表面沉积了Ni-Co-P催化剂。研究了催化剂用量,硼氢化钠、氢氧化钠浓度,温度等对碱性硼氢化钠溶液水解释氢的影响。电感耦合等离子体原子发射光谱法(ICP-AES)测试得出负载型Ni-Co-P催化剂含镍13.30%(质量分数,下同)、钴82.25%、磷4.45%。硼氢化钠水解释氢实验结果表明,产氢速率与催化剂用量呈线性关系。当温度为45 ℃、催化剂浓度为7.5 g/L、氢氧化钠浓度为5%、硼氢化钠浓度为2.5%时,氢气释放速率达到最大值18.044 L/(g·min)。通过对负载型催化剂Ni-Co-P/CNFs催化碱性硼氢化钠溶液释放氢气动力学研究表明,该催化剂的活化能Ea为51.57 kJ/mol。

English

  • 
    1. [1] HOFFERT M. Governments must pay for clean-energy innovation[J]. Nature, 2011, 472: 137-137.[1] HOFFERT M. Governments must pay for clean-energy innovation[J]. Nature, 2011, 472: 137-137.

    2. [2] SCHLAPBACH L, ZVTTEL A. Hydrogen-storage materials for mobile applications[J]. Nature, 2001, 414: 353-358.[2] SCHLAPBACH L, ZVTTEL A. Hydrogen-storage materials for mobile applications[J]. Nature, 2001, 414: 353-358.

    3. [3] 王威燕, 杨运泉, 罗和安, 彭会左, 张小哲, 胡韬. Ni-Co-W-B非晶态催化剂的制备及其加氢脱氧性能[J]. 催化学报, 2011, 32(10): 1645-1650.(WANG Wei-yan, YANG Yun-quan, LUO He-an, PENG Hui-zuo, ZHANG Xiao-zhe, HU Tao. Preparation and hydrodexy genation properities of Ni-Co-W-B amorphous catalyst[J]. Chin J Catal, 2011, 32(10): 1645-1650.)[3] 王威燕, 杨运泉, 罗和安, 彭会左, 张小哲, 胡韬. Ni-Co-W-B非晶态催化剂的制备及其加氢脱氧性能[J]. 催化学报, 2011, 32(10): 1645-1650.(WANG Wei-yan, YANG Yun-quan, LUO He-an, PENG Hui-zuo, ZHANG Xiao-zhe, HU Tao. Preparation and hydrodexy genation properities of Ni-Co-W-B amorphous catalyst[J]. Chin J Catal, 2011, 32(10): 1645-1650.)

    4. [4] SANTOS D M F, SEQUEIRA C A C. Sodium borohydride as a fuel for the future[J]. Renew Sust Energy Rev, 2011, 15(8): 3980-4001.[4] SANTOS D M F, SEQUEIRA C A C. Sodium borohydride as a fuel for the future[J]. Renew Sust Energy Rev, 2011, 15(8): 3980-4001.

    5. [5] 王晓磊, 邓文义, 于伟超, 苏亚欣. 污泥微波高温热解条件下富氢气体生成特征研究[J]. 燃料化学学报, 2013, 41(2): 243-250.(WANG Xiao-lei, DENG Wen-yi, YU Wei-chao, SU Ya-xin. Hydrogen-rich gas formation characteristics during microwave-induced high temperature pyrolysis of sewage sludge[J]. J Fuel Chem Technol, 2013, 41(2): 243-250.)[5] 王晓磊, 邓文义, 于伟超, 苏亚欣. 污泥微波高温热解条件下富氢气体生成特征研究[J]. 燃料化学学报, 2013, 41(2): 243-250.(WANG Xiao-lei, DENG Wen-yi, YU Wei-chao, SU Ya-xin. Hydrogen-rich gas formation characteristics during microwave-induced high temperature pyrolysis of sewage sludge[J]. J Fuel Chem Technol, 2013, 41(2): 243-250.)

    6. [6] HUANG Z M, SU A, LIU Y C. Hydrogen generator system using Ru catalyst for PEMFC (proton exchange membrane fuel cell) applications[J]. Energy, 2013, 51: 230-236.[6] HUANG Z M, SU A, LIU Y C. Hydrogen generator system using Ru catalyst for PEMFC (proton exchange membrane fuel cell) applications[J]. Energy, 2013, 51: 230-236.

    7. [7] YU L, MATTHEWS M A. A reactor model for hydrogen generation from sodium borohydride and water vapor[J]. Int J Hydrogen Energy, 2014, 39(8): 3830-3836.[7] YU L, MATTHEWS M A. A reactor model for hydrogen generation from sodium borohydride and water vapor[J]. Int J Hydrogen Energy, 2014, 39(8): 3830-3836.

    8. [8] JENA P. Materials for hydrogen storage: Past, present, and future[J]. J Phys Chen Lett, 2011, 2(3): 206-211.[8] JENA P. Materials for hydrogen storage: Past, present, and future[J]. J Phys Chen Lett, 2011, 2(3): 206-211.

    9. [9] KWON H J, KIM J, CHO S W, YOO J H, ROH K M, KIM W. The effect of Sc addition on the hydrogen storage capacity of Ti0.32Cr0.43V0.25 alloy[J]. Int J Hydrogen Energy, 2014, 39(20): 10600-10605.[9] KWON H J, KIM J, CHO S W, YOO J H, ROH K M, KIM W. The effect of Sc addition on the hydrogen storage capacity of Ti0.32Cr0.43V0.25 alloy[J]. Int J Hydrogen Energy, 2014, 39(20): 10600-10605.

    10. [10] ZHAO Y P, DING L Z, ZHONG T S, YUAN H T, JIAO L F. Hydrogen storage behavior of 2LiBH4/MgH2 composites improved by the catalysis of CoNiB nanoparticles[J]. Int J Hydrogen Energy, 2014, 39(21): 11055-11060.[10] ZHAO Y P, DING L Z, ZHONG T S, YUAN H T, JIAO L F. Hydrogen storage behavior of 2LiBH4/MgH2 composites improved by the catalysis of CoNiB nanoparticles[J]. Int J Hydrogen Energy, 2014, 39(21): 11055-11060.

    11. [11] ZHU X L, PEI L C, ZHAO Z Y, LIU B Z, HAN S M, WANG R B. The catalysis mechanism of La hydrides on hydrogen storage properties of MgH2 in MgH2 + x wt.% LaH3(x= 0, 10, 20, and 30) composites[J]. J Alloy Compd, 2013, 577: 64-69.[11] ZHU X L, PEI L C, ZHAO Z Y, LIU B Z, HAN S M, WANG R B. The catalysis mechanism of La hydrides on hydrogen storage properties of MgH2 in MgH2 + x wt.% LaH3(x= 0, 10, 20, and 30) composites[J]. J Alloy Compd, 2013, 577: 64-69.

    12. [12] LEE J K, ANN H H, YI Y, LEE K W, UHM S, LEE J. A stable Ni-B catalyst in hydrogen generation via NaBH4 hydrolysis[J]. Catal Commun, 2011, 16(1): 120-123.[12] LEE J K, ANN H H, YI Y, LEE K W, UHM S, LEE J. A stable Ni-B catalyst in hydrogen generation via NaBH4 hydrolysis[J]. Catal Commun, 2011, 16(1): 120-123.

    13. [13] ZHENG X P, ZHENG J J, MA Q H, LIU S L, XIN F, LIN X B, XIAO G. Study on dehydrogenation properties of the LiAlH4-NH4Cl system[J]. J Alloy Compd, 2013, 551: 508-511.[13] ZHENG X P, ZHENG J J, MA Q H, LIU S L, XIN F, LIN X B, XIAO G. Study on dehydrogenation properties of the LiAlH4-NH4Cl system[J]. J Alloy Compd, 2013, 551: 508-511.

    14. [14] VARIN R A, ZBRONIEC L. Decomposition behavior of unmilled and ball milled lithium alanate (LiAlH4) including long-term storage and moisture effects[J]. J Alloy Compd, 2010, 504(1): 89-101.[14] VARIN R A, ZBRONIEC L. Decomposition behavior of unmilled and ball milled lithium alanate (LiAlH4) including long-term storage and moisture effects[J]. J Alloy Compd, 2010, 504(1): 89-101.

    15. [15] EASTON D S, SCHNEIBEL J H, SPEAKMAN S A. Factors affecting hydrogen release from lithium alanate (LiAlH4)[J]. J Alloy Compd, 2005, 398(1/2): 245-248.[15] EASTON D S, SCHNEIBEL J H, SPEAKMAN S A. Factors affecting hydrogen release from lithium alanate (LiAlH4)[J]. J Alloy Compd, 2005, 398(1/2): 245-248.

    16. [16] MOHAJERI N, TRAISSI A, ADEBIYI O. Hydrolytic cleavage of ammonia-boranecomplex for hydrogen production[J]. J Power Sources, 2007, 167(2): 482-485.[16] MOHAJERI N, TRAISSI A, ADEBIYI O. Hydrolytic cleavage of ammonia-boranecomplex for hydrogen production[J]. J Power Sources, 2007, 167(2): 482-485.

    17. [17] KUMAR R H, KE X Z, ZHANG J Z, LIN Z J, VOGEL S C, HARTL M, SINOGEIKIN S, DAEMEN L, CORNELIUS A L, CHEN C F, ZHAO Y S. Pressure induced structural changes in the potential hydrogen storage compound ammonia borane: A combined X-ray, neutron and theoretical investigation[J]. Chem phys lett, 2010, 495(4/6): 203-207.[17] KUMAR R H, KE X Z, ZHANG J Z, LIN Z J, VOGEL S C, HARTL M, SINOGEIKIN S, DAEMEN L, CORNELIUS A L, CHEN C F, ZHAO Y S. Pressure induced structural changes in the potential hydrogen storage compound ammonia borane: A combined X-ray, neutron and theoretical investigation[J]. Chem phys lett, 2010, 495(4/6): 203-207.

    18. [18] FIGEN A K, PISKIN M B, COSKUNER B, IMAMOGLU V. Synthesis, structural characterization, and hydrolysis of Ammonia Borane (NH3BH3) as a hydrogen storage carrier[J]. Int J Hydrogen Energy, 2013, 38(36): 16215-16228.[18] FIGEN A K, PISKIN M B, COSKUNER B, IMAMOGLU V. Synthesis, structural characterization, and hydrolysis of Ammonia Borane (NH3BH3) as a hydrogen storage carrier[J]. Int J Hydrogen Energy, 2013, 38(36): 16215-16228.

    19. [19] WU C, BAI Y, LIU D X, WU F, PANG M L, YI B L. Ni-Co-B catalyst-promoted hydrogen generation by hydrolyzing NaBH4 solution for in situ hydrogen supply of portable fuel cells[J]. Catal Today, 2011, 170(1): 33-39.[19] WU C, BAI Y, LIU D X, WU F, PANG M L, YI B L. Ni-Co-B catalyst-promoted hydrogen generation by hydrolyzing NaBH4 solution for in situ hydrogen supply of portable fuel cells[J]. Catal Today, 2011, 170(1): 33-39.

    20. [20] WU C, BAI Y, WU F, YI B L, ZHANG H M. Highly active cobalt-based catalysts in situ prepared from CoX2 (X = Cl-, NO3-) and used for promoting hydrogen generation from NaBH4 solution[J]. Int J Hydrogen Energy, 2010, 35(7): 2675-2679.[20] WU C, BAI Y, WU F, YI B L, ZHANG H M. Highly active cobalt-based catalysts in situ prepared from CoX2 (X = Cl-, NO3-) and used for promoting hydrogen generation from NaBH4 solution[J]. Int J Hydrogen Energy, 2010, 35(7): 2675-2679.

    21. [21] XU D Y, ZHANG H M, YE W. Hydrogen generation from hydrolysis of alkaline sodium borohydride solution using Pt/C catalyst[J]. Catal Commun, 2007, 8(11): 1767-1771.[21] XU D Y, ZHANG H M, YE W. Hydrogen generation from hydrolysis of alkaline sodium borohydride solution using Pt/C catalyst[J]. Catal Commun, 2007, 8(11): 1767-1771.

    22. [22] DCMIRCI U B, GARN F. Ru-based bimetallic alloys for hydrogen generation by hydrolysis of sodium tetrahydroborate[J]. J Alloy Compd, 2008, 463(1/2): 107-111.[22] DCMIRCI U B, GARN F. Ru-based bimetallic alloys for hydrogen generation by hydrolysis of sodium tetrahydroborate[J]. J Alloy Compd, 2008, 463(1/2): 107-111.

    23. [23] ALONSO R P, SICURELLI A, CALLONE E, GARTURAN G, RAJ R. A picoscale catalyst for hydrogen generation from NaBH4 for fuel cells[J]. J Power Sources, 2007, 165(1): 315-323.[23] ALONSO R P, SICURELLI A, CALLONE E, GARTURAN G, RAJ R. A picoscale catalyst for hydrogen generation from NaBH4 for fuel cells[J]. J Power Sources, 2007, 165(1): 315-323.

    24. [24] BAYDAROGLU F, ÖZDEMIR E, HASIMOGLU A. An effective synthesis route for improving the catalytic activity of carbon-supported Co-B catalyst for hydrogen generation through hydrolysis of NaBH4[J]. Int J Hydrogen Energy, 2014, 39(3): 1516-1522.[24] BAYDAROGLU F, ÖZDEMIR E, HASIMOGLU A. An effective synthesis route for improving the catalytic activity of carbon-supported Co-B catalyst for hydrogen generation through hydrolysis of NaBH4[J]. Int J Hydrogen Energy, 2014, 39(3): 1516-1522.

    25. [25] OCON J D, TUAN T N, YI Y, LEON R L, LEE J K, LEE J. Ultrafast and stable hydrogen generation from sodium borohydride in methanol and water over Fe-B nanoparticles[J]. J Power Sources, 2013, 243: 444-450.[25] OCON J D, TUAN T N, YI Y, LEON R L, LEE J K, LEE J. Ultrafast and stable hydrogen generation from sodium borohydride in methanol and water over Fe-B nanoparticles[J]. J Power Sources, 2013, 243: 444-450.

    26. [26] ZHANG X W, ZHAO J Z, CHENG F Y, LIANG J, TAO Z L, CHEN J. Electroless-deposited Co-P catalysts for hydrogen generation from alkaline NaBH4 solution[J]. Int J Hydrogen Energy, 2010, 35(15): 8363-8369.[26] ZHANG X W, ZHAO J Z, CHENG F Y, LIANG J, TAO Z L, CHEN J. Electroless-deposited Co-P catalysts for hydrogen generation from alkaline NaBH4 solution[J]. Int J Hydrogen Energy, 2010, 35(15): 8363-8369.

    27. [27] DAI H B, LIANG Y, WANG P, YAO X D, RUFFORD T, LU M, CHENG H M. High-performance cobalt-tungsten-boron catalyst supported on Ni foam for hydrogen generation from alkaline sodium borohydride sodium[J]. Int J Hydrogen Energy, 2008, 33(16): 4405-4412.[27] DAI H B, LIANG Y, WANG P, YAO X D, RUFFORD T, LU M, CHENG H M. High-performance cobalt-tungsten-boron catalyst supported on Ni foam for hydrogen generation from alkaline sodium borohydride sodium[J]. Int J Hydrogen Energy, 2008, 33(16): 4405-4412.

    28. [28] ZHU J, LI R, NIU W L, WU Y J, GOU X L. Facile hydrogen generation using colloidal carbon supported cobalt to catalyze hydrolysis of sodium borohydride[J]. J Power Sources, 2012, 211(1): 33-39.[28] ZHU J, LI R, NIU W L, WU Y J, GOU X L. Facile hydrogen generation using colloidal carbon supported cobalt to catalyze hydrolysis of sodium borohydride[J]. J Power Sources, 2012, 211(1): 33-39.

    29. [29] LI Z, LI H L, WANG L N, LIU T Y, ZHANG T, WANG G X, XIE G W. Hydrogen generation from catalytic hydrolysis of sodium borohydride solution using supported amorphous alloy catalysts (Ni-Co-P/ γ-Al2O3)[J]. Int J Hydrogen Energy, 2014, 39(27): 14935-14941.[29] LI Z, LI H L, WANG L N, LIU T Y, ZHANG T, WANG G X, XIE G W. Hydrogen generation from catalytic hydrolysis of sodium borohydride solution using supported amorphous alloy catalysts (Ni-Co-P/ γ-Al2O3)[J]. Int J Hydrogen Energy, 2014, 39(27): 14935-14941.

    30. [30] KREEVOY M M, JACOBSON R W. The rate of decomposition of NaBH4 in basic aqueous solution[J]. Ventron Alembic, 1979, 15: 2-3.[30] KREEVOY M M, JACOBSON R W. The rate of decomposition of NaBH4 in basic aqueous solution[J]. Ventron Alembic, 1979, 15: 2-3.

    31. [31] ZHAO J Z, MA H, CHEN J. Improved hydrogen generation from alkaline NaBH4 solution using cabon-supported Co-B as catalysts[J]. Int J Hydrogen Energy, 2007, 32(18): 4711-4716.[31] ZHAO J Z, MA H, CHEN J. Improved hydrogen generation from alkaline NaBH4 solution using cabon-supported Co-B as catalysts[J]. Int J Hydrogen Energy, 2007, 32(18): 4711-4716.

    32. [32] LIU Z L, GUO B, CHAN S H, TANG E H, HONG L. Pt and Ru dispersed on LiCoO2 for hydrogen generation from sodium borohydridesolutions[J]. J Power Sources, 2008, 176(1): 306-311.[32] LIU Z L, GUO B, CHAN S H, TANG E H, HONG L. Pt and Ru dispersed on LiCoO2 for hydrogen generation from sodium borohydridesolutions[J]. J Power Sources, 2008, 176(1): 306-311.

    33. [33] LIU C H, CHEN B H, HSUEH C L, KU J R, JENG M S, TASU F. Hydrogen generation from hydrolysis of sodium borohydride using Ni-Runanocomposite as catalysts[J]. Int J Hydrogen Energy, 2009, 34(5): 2153-2163.[33] LIU C H, CHEN B H, HSUEH C L, KU J R, JENG M S, TASU F. Hydrogen generation from hydrolysis of sodium borohydride using Ni-Runanocomposite as catalysts[J]. Int J Hydrogen Energy, 2009, 34(5): 2153-2163.

    34. [34] VERNEKAR A A, BUGDE S T, TILVE S. Sustainable hydrogen production by catalytic hydrolysis of alkaline sodium borohydriable Co-Co2B and Ni-Ni3B nanocomposites[J]. Int J Hydrogen Energy, 2012, 37(1): 327-334.[34] VERNEKAR A A, BUGDE S T, TILVE S. Sustainable hydrogen production by catalytic hydrolysis of alkaline sodium borohydriable Co-Co2B and Ni-Ni3B nanocomposites[J]. Int J Hydrogen Energy, 2012, 37(1): 327-334.

    35. [35] GUO Y P, FENG Q H, MA J T. The hydrogen generation from alkaline NaBH4 solution by using electroplated amorphous Co-Ni-P film catalysts[J]. Appl Surf Sci, 2013, 273: 253-256.[35] GUO Y P, FENG Q H, MA J T. The hydrogen generation from alkaline NaBH4 solution by using electroplated amorphous Co-Ni-P film catalysts[J]. Appl Surf Sci, 2013, 273: 253-256.

    36. [36] NIE M, ZOU Y C, HUANG Y M, WANG J Q. Ni-Fe-B catalysts for NaBH4 hydrolysis[J]. Int J Hydrogen Energy, 2012, 37(2): 1568-1576.[36] NIE M, ZOU Y C, HUANG Y M, WANG J Q. Ni-Fe-B catalysts for NaBH4 hydrolysis[J]. Int J Hydrogen Energy, 2012, 37(2): 1568-1576.

    37. [37] PATEL N, FERNANDES R, BAZZANELLA N, MIOTELLO A. Enhanced hydrogen production by hydrolysis of NaBH4 using "Co-B nanoparticles supported on carbon film" catalyst synthesized by pulsed laser deposition[J]. Catal Today, 2011, 170(1): 20-26.[37] PATEL N, FERNANDES R, BAZZANELLA N, MIOTELLO A. Enhanced hydrogen production by hydrolysis of NaBH4 using "Co-B nanoparticles supported on carbon film" catalyst synthesized by pulsed laser deposition[J]. Catal Today, 2011, 170(1): 20-26.

    38. [38] ZHU J, LI R, NIU W L, WU Y J, GOU X L. Fast hydrogen generation from NaBH4 hydrolysis catalyzed by carbon aerogels supported cobalt nanoparticles[J]. Int J Hydrogen Energy, 2013, 38(25): 10864-10870.[38] ZHU J, LI R, NIU W L, WU Y J, GOU X L. Fast hydrogen generation from NaBH4 hydrolysis catalyzed by carbon aerogels supported cobalt nanoparticles[J]. Int J Hydrogen Energy, 2013, 38(25): 10864-10870.

    39. [39] RAKAP M, KALU E E, ÖZKAR S. Cobalt-nickel-phosphorus supported on Pd-activated TiO2 (Co-Ni-P/Pd-TiO2) as cost-effective and reusable catalyst for hydrogen generation from hydrolysis of alkaline sodium borohydridesolution[J]. J Alloy Compd, 2011, 509(25): 7010-7021.[39] RAKAP M, KALU E E, ÖZKAR S. Cobalt-nickel-phosphorus supported on Pd-activated TiO2 (Co-Ni-P/Pd-TiO2) as cost-effective and reusable catalyst for hydrogen generation from hydrolysis of alkaline sodium borohydridesolution[J]. J Alloy Compd, 2011, 509(25): 7010-7021.

    40. [40] BILEN M, GVRVM, AKANYIRIM. Role of NaCl in NaBH4 production and its hydrolysis[J]. Energy Convers Manage, 2013, 72: 134-140.[40] BILEN M, GVRVM, AKANYIRIM. Role of NaCl in NaBH4 production and its hydrolysis[J]. Energy Convers Manage, 2013, 72: 134-140.

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