催化发光的应用研究进展

范慧珍 周考文

引用本文: 范慧珍, 周考文. 催化发光的应用研究进展[J]. 应用化学, 2016, 33(7): 733-741. doi: 10.11944/j.issn.1000-0518.2016.07.150394 shu
Citation:  FAN Huizhen, ZHOU Kaowen. Recent Research Advances in Applications of Cataluminescence[J]. Chinese Journal of Applied Chemistry, 2016, 33(7): 733-741. doi: 10.11944/j.issn.1000-0518.2016.07.150394 shu

催化发光的应用研究进展

    通讯作者: 周考文,教授;Tel/Fax:010-52072076;E-mail:zhoukaowen@buu.edu.cn;研究方向:化学发光分析和催化动态分析
  • 基金项目:

    北京市自然科学基金(NO.2152013) 

    北京市教委科技计划重点项目(KZ201311417038)资助 

摘要: 催化发光是物质在催化材料表面发生反应产生的发光现象,是一种重要的化学分析方法,在药物分析、食品分析、免疫学分析以及环境监测等方面具有广泛的应用前景。 本文从挥发性有机物的快速定量检测,分析物的识别区分以及催化剂的活性评估三方面综述了催化发光的应用研究进展,并对催化发光的研究方向进行了展望。

English

  • 
    1. [1] LI Chao,LIU Shuyuan,LI Yuanyuan,et al. The Development of Chemiluminescence and Their Application[J]. Anal Test Technol Instrum,2006,12(2):75-81(in Chinese).李超,刘树元,李媛媛,等. 化学发光分析法的发展与应用[J]. 分析测试技术与仪器,2006,12(2):75-81.[1] LI Chao,LIU Shuyuan,LI Yuanyuan,et al. The Development of Chemiluminescence and Their Application[J]. Anal Test Technol Instrum,2006,12(2):75-81(in Chinese).李超,刘树元,李媛媛,等. 化学发光分析法的发展与应用[J]. 分析测试技术与仪器,2006,12(2):75-81.

    2. [2] WANG Chengquan,WANG Li,MU Haibei,et al. Recent Developmentand Applicationof Chemiluminescence Analysis[J]. J Xinyang Norm Univ(Nat Sci Edit),2007,20(1):124-128(in Chinese).王成全,王黎,穆海贝,等. 化学发光分析技术应用新进展[J]. 信阳师范学院学报(自然科学版),2007,20(1):124-128.[2] WANG Chengquan,WANG Li,MU Haibei,et al. Recent Developmentand Applicationof Chemiluminescence Analysis[J]. J Xinyang Norm Univ(Nat Sci Edit),2007,20(1):124-128(in Chinese).王成全,王黎,穆海贝,等. 化学发光分析技术应用新进展[J]. 信阳师范学院学报(自然科学版),2007,20(1):124-128.

    3. [3] Zhang L C,Hu J,Lv Y,et al. Recent Progress in Chemiluminescence for Gas Analysis[J]. Appl Spectrosc Rev,2010,45(6):474-489.[3] Zhang L C,Hu J,Lv Y,et al. Recent Progress in Chemiluminescence for Gas Analysis[J]. Appl Spectrosc Rev,2010,45(6):474-489.

    4. [4] Kei T,Purnendu K D. New Applications of Chemiluminescence for Selective Gas Analysis[J]. Chem Eng Comm,2008,195(2):82-97.[4] Kei T,Purnendu K D. New Applications of Chemiluminescence for Selective Gas Analysis[J]. Chem Eng Comm,2008,195(2):82-97.

    5. [5] Breysse M,Claudel B,Faure L,et al. Chemiluminescence during the Catalysis of Carbon Monoxide Oxi-dation on a Thoria Surface[J]. J Catal,1976,45(2):137-144.[5] Breysse M,Claudel B,Faure L,et al. Chemiluminescence during the Catalysis of Carbon Monoxide Oxi-dation on a Thoria Surface[J]. J Catal,1976,45(2):137-144.

    6. [6] Nakagawa M. A New Chemiluminescence-based Sensor for Discriminating and Determining Constituents in Mixed Gases[J]. Sens Actuators B,1995,29(1/2/3):94-100.[6] Nakagawa M. A New Chemiluminescence-based Sensor for Discriminating and Determining Constituents in Mixed Gases[J]. Sens Actuators B,1995,29(1/2/3):94-100.

    7. [7] Utsunomiya K,Nakagawa M,Tomiyama T,et al. An Adsorption-luminescent Al2O3 Sheet for Determining Vapor of Odor Substances in Air[J]. Sens Actuators B,1993,13/14(1/2/3):627-628.[7] Utsunomiya K,Nakagawa M,Tomiyama T,et al. An Adsorption-luminescent Al2O3 Sheet for Determining Vapor of Odor Substances in Air[J]. Sens Actuators B,1993,13/14(1/2/3):627-628.

    8. [8] Nakagawa M,Kawabata S,Nishiyama K,et al. Analytical Detection System of Mixed Odor Vapors Using Chemiluminescence-based Gas Sensor[J]. Sens Actuators B,1996,34(34):334-338.[8] Nakagawa M,Kawabata S,Nishiyama K,et al. Analytical Detection System of Mixed Odor Vapors Using Chemiluminescence-based Gas Sensor[J]. Sens Actuators B,1996,34(34):334-338.

    9. [9] Okabayashi T,Matsuo N,Yamamoto I,et al. Temperature-programmed Sensing for Gasidentification Using the Cataluminescence-basedSensors[J]. Sens Actuators B,2005,108(1/2):515-520.[9] Okabayashi T,Matsuo N,Yamamoto I,et al. Temperature-programmed Sensing for Gasidentification Using the Cataluminescence-basedSensors[J]. Sens Actuators B,2005,108(1/2):515-520.

    10. [10] Okabayashi T,Fujimito T,Yamamoto I,et al. High Sensitive Hydrocarbon Gas Sensor Utilizing Cataluminescence of γ-Al2O3 with Dy3+[J]. Sens Actuators B,2000,64(1):54-58.[10] Okabayashi T,Fujimito T,Yamamoto I,et al. High Sensitive Hydrocarbon Gas Sensor Utilizing Cataluminescence of γ-Al2O3 with Dy3+[J]. Sens Actuators B,2000,64(1):54-58.

    11. [11] Zhang Z Y,Zhang C,Zhang X R. Development of a Chemi-luminescence Ethanol Sensor Based on Nanosized ZrO2[J]. Analyst,2002,127(6):792-796.[11] Zhang Z Y,Zhang C,Zhang X R. Development of a Chemi-luminescence Ethanol Sensor Based on Nanosized ZrO2[J]. Analyst,2002,127(6):792-796.

    12. [12] Cao X A,Zhang Z Y,Zhang X R. A Novel Gaseous Acetalde-hyde Sensor Utilizing Cataluminescence on Nanosized-BaCO3[J]. Sens Actuators B,2004,99(1):30-35.[12] Cao X A,Zhang Z Y,Zhang X R. A Novel Gaseous Acetalde-hyde Sensor Utilizing Cataluminescence on Nanosized-BaCO3[J]. Sens Actuators B,2004,99(1):30-35.

    13. [13] Jiao X,Zhang L C,Lv Y,et al. A New Alcohols Sensor Based on Cataluminescence on Nano-CdS[J]. Sens Actutators B,2013,186:750.[13] Jiao X,Zhang L C,Lv Y,et al. A New Alcohols Sensor Based on Cataluminescence on Nano-CdS[J]. Sens Actutators B,2013,186:750.

    14. [14] Yu L Z,Zhang L C,Song H J,et al. Hierarchical SnO2 Architectures:Controllable Growth on Graphene by Atmospheric Pressure Chemicalvapour Deposition and Application in Cataluminescence Gas Sensor[J]. Cryst Eng Comm,2014,16(16):2633.[14] Yu L Z,Zhang L C,Song H J,et al. Hierarchical SnO2 Architectures:Controllable Growth on Graphene by Atmospheric Pressure Chemicalvapour Deposition and Application in Cataluminescence Gas Sensor[J]. Cryst Eng Comm,2014,16(16):2633.

    15. [15] LIU Jiqing,ZHANG Yantu,YUAN Yafei,et al. A Nano-Co3O4-Based Low Temperature Cataluminescence Sensor for the Detection of Gaseous Ethyl Ether[J]. Acta Chim Sin,2013,71:102-106(in Chinese).刘继青,张琰图,.袁亚飞,等. 基于纳米 Co3O4低温催化发光的乙醚传感器[J]. 化学学报,2013,71:102-106.[15] LIU Jiqing,ZHANG Yantu,YUAN Yafei,et al. A Nano-Co3O4-Based Low Temperature Cataluminescence Sensor for the Detection of Gaseous Ethyl Ether[J]. Acta Chim Sin,2013,71:102-106(in Chinese).刘继青,张琰图,.袁亚飞,等. 基于纳米 Co3O4低温催化发光的乙醚传感器[J]. 化学学报,2013,71:102-106.

    16. [16] Shi G L,Sun B,Jin Z,et al. Synthesis of SiO2/Fe3O4 Nanomaterial and Its Application as Cataluminescence Gas Sensor Material for Ether[J]. Sens Actuators B,2012,171(9):699-704.[16] Shi G L,Sun B,Jin Z,et al. Synthesis of SiO2/Fe3O4 Nanomaterial and Its Application as Cataluminescence Gas Sensor Material for Ether[J]. Sens Actuators B,2012,171(9):699-704.

    17. [17] Wang Q H,Li B,Wang Y H,et al. Sensitive and Selective Cataluminescence-based Sensor System for Acetone and Diethyl Ether Determination[J]. Luminescence,2015,30(3):318-324.[17] Wang Q H,Li B,Wang Y H,et al. Sensitive and Selective Cataluminescence-based Sensor System for Acetone and Diethyl Ether Determination[J]. Luminescence,2015,30(3):318-324.

    18. [18] Sun Y,Cao X A,Liu Y H,et al. Research on Benzene, Toluene and Dimethylbenzene Detection Based on a Cataluminescence Sensor[J]. Luminescence,2014,29(2):122-126.[18] Sun Y,Cao X A,Liu Y H,et al. Research on Benzene, Toluene and Dimethylbenzene Detection Based on a Cataluminescence Sensor[J]. Luminescence,2014,29(2):122-126.

    19. [19] Wang Y H,Li B,Wang Q H,et al. Development of a Cataluminescence Sensor for Detecting Benzene Based on Magnesium Silicate Hollow Spheres[J]. Luminescence,2015,30(5):619-624.[19] Wang Y H,Li B,Wang Q H,et al. Development of a Cataluminescence Sensor for Detecting Benzene Based on Magnesium Silicate Hollow Spheres[J]. Luminescence,2015,30(5):619-624.

    20. [20] Li B,Zhang Y J,Liu J F,et al. Sensitive and Selective System of Benzene Detection Based on a Cataluminescence Sensor[J]. Luminescence,2014,29:332-337.[20] Li B,Zhang Y J,Liu J F,et al. Sensitive and Selective System of Benzene Detection Based on a Cataluminescence Sensor[J]. Luminescence,2014,29:332-337.

    21. [21] Zhou K W,Cheng Y L,Yang H W,et al. Simultaneous Determination of Benzene and Formaldehyde in Air by Cross Cataluminescence on Nano-3TiO2-2BiVO4[J]. Sens Actuators B,2014,202(4):721-726.[21] Zhou K W,Cheng Y L,Yang H W,et al. Simultaneous Determination of Benzene and Formaldehyde in Air by Cross Cataluminescence on Nano-3TiO2-2BiVO4[J]. Sens Actuators B,2014,202(4):721-726.

    22. [22] Chu Y X,Zhang Q C,Li Y H,et al. A Cataluminescence Sensor for Propionaldehyde Based on the Use of Nanosized Zirconium Dioxide[J]. Microchim Acta,2014,181(9):1125-1132.[22] Chu Y X,Zhang Q C,Li Y H,et al. A Cataluminescence Sensor for Propionaldehyde Based on the Use of Nanosized Zirconium Dioxide[J]. Microchim Acta,2014,181(9):1125-1132.

    23. [23] Zhang L J,Rong W Q,Chen Y C,et al. A Novel Acetone Sensor Utilizing Cataluminescence on Layered Double Oxide[J]. Sens Actuators B,2014,205(1):82-87.[23] Zhang L J,Rong W Q,Chen Y C,et al. A Novel Acetone Sensor Utilizing Cataluminescence on Layered Double Oxide[J]. Sens Actuators B,2014,205(1):82-87.

    24. [24] Liu H M,Zhang Y T,Zhen Y Z,et al. A 1,2-Propylene Oxide Sensor Utilizing Cataluminescence on CeO2 Nanoparticles[J]. Luminescence,2014,29(8):1183-1187.[24] Liu H M,Zhang Y T,Zhen Y Z,et al. A 1,2-Propylene Oxide Sensor Utilizing Cataluminescence on CeO2 Nanoparticles[J]. Luminescence,2014,29(8):1183-1187.

    25. [25] Chu Y X,Zhang Q C,Zhang W Q,et al. Highly Sensitive Dimethyl Ether Gas Sensor Utilizing Cataluminescence on Nanosized MgO/In2O3[J]. Meas Sci Technol,2014,25(8):85105-85111.[25] Chu Y X,Zhang Q C,Zhang W Q,et al. Highly Sensitive Dimethyl Ether Gas Sensor Utilizing Cataluminescence on Nanosized MgO/In2O3[J]. Meas Sci Technol,2014,25(8):85105-85111.

    26. [26] Yu L Z,Song H J,Tang Y R,et al. Controllable Deposition of ZnO-doped SnO2 Nanowires on Au/graphene and Their Application in Cataluminescence Sensing for Alcohols and Ketones[J]. Sens Actuators B,2014,203:726-735.[26] Yu L Z,Song H J,Tang Y R,et al. Controllable Deposition of ZnO-doped SnO2 Nanowires on Au/graphene and Their Application in Cataluminescence Sensing for Alcohols and Ketones[J]. Sens Actuators B,2014,203:726-735.

    27. [27] Zheng J Z,Zhang W X,Cao J,et al. A Novel and Highly Sensitive Gaseous n-Hexane Sensor Based on Thermal Desorption/Cataluminescence[J]. RSC Adv,2014,4(41):21644-21649.[27] Zheng J Z,Zhang W X,Cao J,et al. A Novel and Highly Sensitive Gaseous n-Hexane Sensor Based on Thermal Desorption/Cataluminescence[J]. RSC Adv,2014,4(41):21644-21649.

    28. [28] Cao X A,Da H M,Chen S L,et al. A High Selective Cataluminescence Sensor for the Determination of Tetrahydrofuran Vapor[J]. Meas Sci Technol,2012,24(2):827-837.[28] Cao X A,Da H M,Chen S L,et al. A High Selective Cataluminescence Sensor for the Determination of Tetrahydrofuran Vapor[J]. Meas Sci Technol,2012,24(2):827-837.

    29. [29] Xu L,Song H J,Hu J,et al. A Cataluminescence Gas Sensor for Triethylamine Based on Nanosized LaF3-CeO2[J]. Sens Actuators B,2012,169(169):261-266.[29] Xu L,Song H J,Hu J,et al. A Cataluminescence Gas Sensor for Triethylamine Based on Nanosized LaF3-CeO2[J]. Sens Actuators B,2012,169(169):261-266.

    30. [30] Cai P Y,Song H J,Zhang L C,et al. Enhanced Cataluminescence Sensing Characteristics of Ethanol on Hierarchical Spheres ZnO[J]. Sens Actuators B,2012,173(12):93-99.[30] Cai P Y,Song H J,Zhang L C,et al. Enhanced Cataluminescence Sensing Characteristics of Ethanol on Hierarchical Spheres ZnO[J]. Sens Actuators B,2012,173(12):93-99.

    31. [31] Zhou K W,Gu C X,Li X,et al. Determination of Trimethylamine in Air by Cataluminescence-Based Gas Sensor[J]. Adv Mater Res,2012,605/606/607:933-936.[31] Zhou K W,Gu C X,Li X,et al. Determination of Trimethylamine in Air by Cataluminescence-Based Gas Sensor[J]. Adv Mater Res,2012,605/606/607:933-936.

    32. [32] Zhou K W,Gu C X,Ma D P,et al. Real-Time Monitoring of Acetaldehyde in Air by Cataluminescence-Based Gas Sensor[J]. Appl Mech Mater,2012,268/269/270:1594-1597.[32] Zhou K W,Gu C X,Ma D P,et al. Real-Time Monitoring of Acetaldehyde in Air by Cataluminescence-Based Gas Sensor[J]. Appl Mech Mater,2012,268/269/270:1594-1597.

    33. [33] Zhou K W,Li X,Su D,et al. A Rapid and Sensitive Acetone Gas Sensor Utilizing Thermal Desorption Coupled with Cataluminescence on Nano-Cr4TiO8[J]. Adv Mater Res,2012,468/469/470/471:217-220.[33] Zhou K W,Li X,Su D,et al. A Rapid and Sensitive Acetone Gas Sensor Utilizing Thermal Desorption Coupled with Cataluminescence on Nano-Cr4TiO8[J]. Adv Mater Res,2012,468/469/470/471:217-220.

    34. [34] LIU Mingyang,ZHAO Jinghong,ZOU Mingqiang,et al. Contrallable Fabrication of SnO2 Nanomaterials with Three Kinds of Morphologies and Their Application as Cataluminescence Sensor[J]. Chem J Chinese Univ,2011,32(5):1112-1117(in Chinese).刘名扬,赵景红,邹明强,等. 不同形貌纳米SnO2的可控合成及催化发光传感器[J]. 高等学校化学学报,2011,32(5):1112-1117.[34] LIU Mingyang,ZHAO Jinghong,ZOU Mingqiang,et al. Contrallable Fabrication of SnO2 Nanomaterials with Three Kinds of Morphologies and Their Application as Cataluminescence Sensor[J]. Chem J Chinese Univ,2011,32(5):1112-1117(in Chinese).刘名扬,赵景红,邹明强,等. 不同形貌纳米SnO2的可控合成及催化发光传感器[J]. 高等学校化学学报,2011,32(5):1112-1117.

    35. [35] Tao Y,Cao X A,Peng Y,et al. Cataluminescence Sensor for Gaseous Acetic Acid Using a Thin Film of In2O3[J]. Microchim Acta,2012,176(3/4):485-491.[35] Tao Y,Cao X A,Peng Y,et al. Cataluminescence Sensor for Gaseous Acetic Acid Using a Thin Film of In2O3[J]. Microchim Acta,2012,176(3/4):485-491.

    36. [36] Li Z H,Xi W,Lu C. Hydrotalcite-Supported Gold Nanoparticle Catalysts as a Low Temperature Cataluminescence Sensing Platform[J]. Sens Actuators B,2015,219:354-360.[36] Li Z H,Xi W,Lu C. Hydrotalcite-Supported Gold Nanoparticle Catalysts as a Low Temperature Cataluminescence Sensing Platform[J]. Sens Actuators B,2015,219:354-360.

    37. [37] ZHAO Ning,LIAO Libing. Research and Application Progress of Hydrotalcite-like Compounds[J]. Mater Rev,2011,25:543-548(in Chinese).赵宁,廖立兵. 水滑石类化合物及其制备、应用的研究进展[J]. 材料导报,2011,25:543-548.[37] ZHAO Ning,LIAO Libing. Research and Application Progress of Hydrotalcite-like Compounds[J]. Mater Rev,2011,25:543-548(in Chinese).赵宁,廖立兵. 水滑石类化合物及其制备、应用的研究进展[J]. 材料导报,2011,25:543-548.

    38. [38] AN Xia,XIE Xianmei,WANG Zhizhong. Properties and Catalytic Application of Hydrotalcite-like Compounds[J]. J Taiyuan Univ Technol,2002,5:498-501(in Chinese).安霞,谢鲜梅,王志忠. 水滑石类化合物的性质及其催化应用[J]. 太原理工大学学报,2002,5:498-501.[38] AN Xia,XIE Xianmei,WANG Zhizhong. Properties and Catalytic Application of Hydrotalcite-like Compounds[J]. J Taiyuan Univ Technol,2002,5:498-501(in Chinese).安霞,谢鲜梅,王志忠. 水滑石类化合物的性质及其催化应用[J]. 太原理工大学学报,2002,5:498-501.

    39. [39] Zhang L J,Rong W Q,Chen Y C,et al. A Novel Acetone Sensor Utilizing Cataluminescence on Layered Double Oxide[J]. Sens Actuators B,2014,205(1):82-87.[39] Zhang L J,Rong W Q,Chen Y C,et al. A Novel Acetone Sensor Utilizing Cataluminescence on Layered Double Oxide[J]. Sens Actuators B,2014,205(1):82-87.

    40. [40] Han F F,Yang Y H,Han J Y,et al. Room-Temperature Cataluminescence from CO Oxidation in a Non-thermal Plasma-Assisted Catalysis System[J]. J Hazard Mater,2015,293:1-6.[40] Han F F,Yang Y H,Han J Y,et al. Room-Temperature Cataluminescence from CO Oxidation in a Non-thermal Plasma-Assisted Catalysis System[J]. J Hazard Mater,2015,293:1-6.

    41. [41] Wan X Y,Wu L Q,Zhang L C,et al. Novel Metal-Organic Frameworks-Based Hydrogen Sulfide Cataluminescence Sensors[J]. Sens Actuators B,2015,220:614-621.[41] Wan X Y,Wu L Q,Zhang L C,et al. Novel Metal-Organic Frameworks-Based Hydrogen Sulfide Cataluminescence Sensors[J]. Sens Actuators B,2015,220:614-621.

    42. [42] Wan X Y,Song H J,Zhao D,et al. A Y-doped Metal-Organic Framework-Based Cataluminescence Gas Sensor for Isobutanol[J]. Sens Actuators B,2014,201(4):413-419.[42] Wan X Y,Song H J,Zhao D,et al. A Y-doped Metal-Organic Framework-Based Cataluminescence Gas Sensor for Isobutanol[J]. Sens Actuators B,2014,201(4):413-419.

    43. [43] Li B,Liu J F,Shi G L,et al. A Research on Detection and Identification of Volatile Organic Compounds Utilizing Cataluminescence-Based Sensor Array[J]. Sens Actuators B,2013,177(2):1167-1172.[43] Li B,Liu J F,Shi G L,et al. A Research on Detection and Identification of Volatile Organic Compounds Utilizing Cataluminescence-Based Sensor Array[J]. Sens Actuators B,2013,177(2):1167-1172.

    44. [44] Liu B W,Kong H,Luo A Q. A Cataluminescence-Based Vapor-Sensitive Sensor Array for Discriminating Flammable Liquid Vapors[J]. Talanta,2014,121:43-49.[44] Liu B W,Kong H,Luo A Q. A Cataluminescence-Based Vapor-Sensitive Sensor Array for Discriminating Flammable Liquid Vapors[J]. Talanta,2014,121:43-49.

    45. [45] Niu W F. A Chemiluminescence Sensor Array Based on Nanomaterials for Discrimination of Teas[J]. Luminescence,2013,28(2):239-243.[45] Niu W F. A Chemiluminescence Sensor Array Based on Nanomaterials for Discrimination of Teas[J]. Luminescence,2013,28(2):239-243.

    46. [46] Han J Y,Han F F,Ouyang J,et al. Venturi-Electrosonic Spray Ionization Cataluminescence Sensor Array for Saccharides Detection[J]. Anal Chem,2013,85(16):7738-7744.[46] Han J Y,Han F F,Ouyang J,et al. Venturi-Electrosonic Spray Ionization Cataluminescence Sensor Array for Saccharides Detection[J]. Anal Chem,2013,85(16):7738-7744.

    47. [47] Kong H,Zhang S C,Na N,et al. Recognition of Organic Compounds in Aqueous Solutions by Chemiluminescence on an Array of Catalytic Nanoparticles[J]. Analyst,2009,134(12):2441-2446.[47] Kong H,Zhang S C,Na N,et al. Recognition of Organic Compounds in Aqueous Solutions by Chemiluminescence on an Array of Catalytic Nanoparticles[J]. Analyst,2009,134(12):2441-2446.

    48. [48] Kong H,Liu D,Zhang S C,et al. Protein Sensing and Cell Discrimination Using a Sensor Array Based on Nanomaterial-Assisted Chemiluminescence[J]. Anal Chem,2011,83(6):1867-1870.[48] Kong H,Liu D,Zhang S C,et al. Protein Sensing and Cell Discrimination Using a Sensor Array Based on Nanomaterial-Assisted Chemiluminescence[J]. Anal Chem,2011,83(6):1867-1870.

    49. [49] CHEN Jinglin,CAO Xiaoan,XING Ruiya,et al. A Sensor System for Identifying Ether Vapors Based on Extracting Two-stage Cataluminescence Signals[J]. Acta Chim Sin,2013,71:1421-1428(in Chinese).陈景林,曹小安,邢锐雅,等. 基于提取两级催化发光信号以鉴别醚蒸气的传感器[J]. 化学学报,2013,71:1421-1428.[49] CHEN Jinglin,CAO Xiaoan,XING Ruiya,et al. A Sensor System for Identifying Ether Vapors Based on Extracting Two-stage Cataluminescence Signals[J]. Acta Chim Sin,2013,71:1421-1428(in Chinese).陈景林,曹小安,邢锐雅,等. 基于提取两级催化发光信号以鉴别醚蒸气的传感器[J]. 化学学报,2013,71:1421-1428.

    50. [50] CHEN Jinglin,CAO Xiaoan,LIU Yonghui,et al. Sensor Based Extracting Multidimensional Cataluminescence Signals for Identifying Toxic Gas[J]. Chem J Chinese Univ,2014,359(6):1166-1174(in Chinese).陈景林,曹小安,刘永慧,等. 提取多维催化发光信号鉴别有害气体的传感器[J]. 高等学校化学学报,2014,359(6):1166-1174.[50] CHEN Jinglin,CAO Xiaoan,LIU Yonghui,et al. Sensor Based Extracting Multidimensional Cataluminescence Signals for Identifying Toxic Gas[J]. Chem J Chinese Univ,2014,359(6):1166-1174(in Chinese).陈景林,曹小安,刘永慧,等. 提取多维催化发光信号鉴别有害气体的传感器[J]. 高等学校化学学报,2014,359(6):1166-1174.

    51. [51] Zhang R K,Cao X A,Liu Y H,et al. A New Method for Identifying Compounds by Luminescent Response Profiles on a Cataluminescence Based Sensor[J]. Anal Chem,2011,23(83):8975-8983.[51] Zhang R K,Cao X A,Liu Y H,et al. A New Method for Identifying Compounds by Luminescent Response Profiles on a Cataluminescence Based Sensor[J]. Anal Chem,2011,23(83):8975-8983.

    52. [52] Zeng J Y,Cao X A,Liu Y H,et al. A Single Cataluminescence Sensor for Wine Identification by Luminescent Response Profiles[J]. Anal Methods,2014,6(8):2633-2641.[52] Zeng J Y,Cao X A,Liu Y H,et al. A Single Cataluminescence Sensor for Wine Identification by Luminescent Response Profiles[J]. Anal Methods,2014,6(8):2633-2641.

    53. [53] CAO Xiaoan,JIANG Jiayin,ZENG Jiayi. Study on a Method for Identifying Vinegars by a Single Cataluminescence Based Sensor[J]. J Guangzhou Univ(Nat Sci Edit),2014,13(4):33-42(in Chinese).曹小安,江嘉茵,曾嘉仪. 单个催化发光传感器鉴别食用醋的方法研究[J]. 广州大学学报(自然科学版),2014,13(4):33-42.[53] CAO Xiaoan,JIANG Jiayin,ZENG Jiayi. Study on a Method for Identifying Vinegars by a Single Cataluminescence Based Sensor[J]. J Guangzhou Univ(Nat Sci Edit),2014,13(4):33-42(in Chinese).曹小安,江嘉茵,曾嘉仪. 单个催化发光传感器鉴别食用醋的方法研究[J]. 广州大学学报(自然科学版),2014,13(4):33-42.

    54. [54] Zeng J Y,Cao X A,Liu Y H,et al. A Single Cataluminescence Sensor Based on Spectral Array and Its Use in the Identication of Vinegars[J]. Anal Chim Acta,2015,864:64-73.[54] Zeng J Y,Cao X A,Liu Y H,et al. A Single Cataluminescence Sensor Based on Spectral Array and Its Use in the Identication of Vinegars[J]. Anal Chim Acta,2015,864:64-73.

    55. [55] Na N,Zhang S C,Wang X,et al. Cataluminescence-Based Array Imaging for High-Throughput Screening of Heterogeneous Catalysts[J]. Anal Chem,2009,81(6):2092-2097.[55] Na N,Zhang S C,Wang X,et al. Cataluminescence-Based Array Imaging for High-Throughput Screening of Heterogeneous Catalysts[J]. Anal Chem,2009,81(6):2092-2097.

    56. [56] Wu L Y,Zhang Y T,Zhang S C,et al. Development of a Cataluminescence-Based Method for Rapid Screening of de-NOx Catalysts[J]. Anal Methods,2012,4(4):2218-2220.[56] Wu L Y,Zhang Y T,Zhang S C,et al. Development of a Cataluminescence-Based Method for Rapid Screening of de-NOx Catalysts[J]. Anal Methods,2012,4(4):2218-2220.

    57. [57] Zhang L J,Chen Y C,He N,et al. Acetone Cataluminescence as an Indicator for Evaluation of Heterogeneous Base Catalysts in Biodiesel Production[J]. Anal Chem,2014,86(1):870-875.[57] Zhang L J,Chen Y C,He N,et al. Acetone Cataluminescence as an Indicator for Evaluation of Heterogeneous Base Catalysts in Biodiesel Production[J]. Anal Chem,2014,86(1):870-875.

    58. [58] Chen H,Lin L,Li H F,et al. Quantum Dots-Enhanced Chemiluminescence:Mechanism and Application[J]. Coord Chem Rev,2014,263/264:86-100.[58] Chen H,Lin L,Li H F,et al. Quantum Dots-Enhanced Chemiluminescence:Mechanism and Application[J]. Coord Chem Rev,2014,263/264:86-100.

    59. [59] Chen H,Li H F,Lin J M. Determination of Ammonia in Water Based on Chemiluminescence Resonance Energy Transfer Between Peroxymonocarbonate and Branched NaYF4:Yb3+/Er3+ Nanoparticles[J]. Anal Chem,2012,84(20):8871-8879.[59] Chen H,Li H F,Lin J M. Determination of Ammonia in Water Based on Chemiluminescence Resonance Energy Transfer Between Peroxymonocarbonate and Branched NaYF4:Yb3+/Er3+ Nanoparticles[J]. Anal Chem,2012,84(20):8871-8879.

    60. [60] Chen H,Li R B,Li H F,et al. Plasmon-Assisted Enhancement of the Ultraweak Chemiluminescence Using Cu/Ni Metal Nanoparticles[J]. J Phys Chem C,2012,116(28):14796-14803.[60] Chen H,Li R B,Li H F,et al. Plasmon-Assisted Enhancement of the Ultraweak Chemiluminescence Using Cu/Ni Metal Nanoparticles[J]. J Phys Chem C,2012,116(28):14796-14803.

  • 加载中
计量
  • PDF下载量:  0
  • 文章访问数:  251
  • HTML全文浏览量:  27
文章相关
  • 收稿日期:  2015-11-10
  • 网络出版日期:  2016-01-18
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

/

返回文章