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以绿色化学原则指导蚜虫报警信息素的合成 被引量:5
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作者 张钟宪 胡德荣 +1 位作者 游越 牛焕双 《首都师范大学学报(自然科学版)》 2005年第4期46-48,56,共4页
(反)-β-法尼烯是蚜虫的报警信息素,极具发展潜力.利用(反)-β-法尼烯具有驱散蚜虫的特点,用于温室或大棚中可以防范蚜虫;将(反)-β-法尼烯与常规杀虫剂混用,可驱使蚜虫主动接触杀虫剂,在动态中被灭杀,此法将降低杀虫剂的用量,有利于环... (反)-β-法尼烯是蚜虫的报警信息素,极具发展潜力.利用(反)-β-法尼烯具有驱散蚜虫的特点,用于温室或大棚中可以防范蚜虫;将(反)-β-法尼烯与常规杀虫剂混用,可驱使蚜虫主动接触杀虫剂,在动态中被灭杀,此法将降低杀虫剂的用量,有利于环境保护、有利于食物的安全、有利于对害虫天敌的保护.国内已有使用蚜虫报警信息素方法的成果,国内外发表了许多研究成果.目前这一研究领域的最主要问题是获取廉价易得的(反)-β-法尼烯.目前的合成方法与合成工艺不具备批量生产的能力.本文提出减压流态化合成的新工艺,将使蚜虫报警信息素的广泛应用得到支持. 展开更多
关键词 橙花叔醇 脱水 流化催化合成 蚜虫报警信息素 (反)-β-法尼烯
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Simulation of gas-solid fluidized bed reactor for F-T synthesis 被引量:1
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作者 CAI Jin LI Tao +2 位作者 SUN Qi-wen YING Wei-yong FANG Ding-ye 《Journal of Coal Science & Engineering(China)》 2009年第4期420-425,共6页
Using the lumping method, CH_4, C_3H_8, C_10H_22, and C_22H_44 were chosen as themodel products, and CO as the key component. The mathematical model of a gas-solidfluidized bed reactor was established based on some hy... Using the lumping method, CH_4, C_3H_8, C_10H_22, and C_22H_44 were chosen as themodel products, and CO as the key component. The mathematical model of a gas-solidfluidized bed reactor was established based on some hypotheses. The consumption kinetic model of CO was investigated, and the parameters were estimated by UniversalGlobal Optimization with the Marquardt method. Residual error distribution and a statisticaltest show that the intrinsic kinetic models are reliable and acceptable. A model of carbonchain growth probability was established in terms of experiments. Coupled with the Ander-son- Schulz-Flory (ASF) distribution, the amount of specific product could be obtained.Large- scale cold model experiments were conducted to investigate the distribution of thegas (solid) phase and determine the function of the voidage with the location of the catalytic bed. The change tendencies of the components in the catalytic bed at different temperatures were computed and figured out. The calculated value computed by the modelestablished for the Fe-based F-T synthesis catalyst fit the experimental value very wellunder the same operating conditions, and all the absolute values of the relative deviationsare less than 5%. 展开更多
关键词 gas-solid fluidized bed F-T synthesis REACTOR LUMPING
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Temperature-controlled synthesis of heterostructured Ru-Ru_(2)P nanoparticles embedded in carbon nanofibers for highly efficient hydrogen production 被引量:2
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作者 Yue Wei Gao Xu +4 位作者 Yujie Wei Lvlv Ji Tao Wang Zhun Liu Sheng Wang 《Science China Materials》 SCIE EI CAS CSCD 2022年第10期2675-2684,共10页
Developing highly efficient,cost-effective,and stable electrocatalysts for hydrogen evolution reaction(HER)is of considerable importance but remains challenging.Herein,we report the fabrication of a robust Ru-based el... Developing highly efficient,cost-effective,and stable electrocatalysts for hydrogen evolution reaction(HER)is of considerable importance but remains challenging.Herein,we report the fabrication of a robust Ru-based electrocatalyst,which comprises heterostructured Ru-Ru_(2)P nanoparticles that are embedded in the N,P-codoped carbon nanofibers(CNFs),through a synthetic strategy involving electrospinning and temperature-controlled pyrolysis treatment.The as-prepared Ru-Ru_(2)P catalyst(Ru-Ru_(2)P@CNFs)shows excellent HER catalytic activities with low overpotentials of 11 and 14 mV in acidic and alkaline media,respectively,to achieve a current density of 10 mA cm^(−2),which are superior to the individual components of pure Ru and Ru_(2)P catalysts.Density functional theory calculations demonstrate the existence of electronic coupling effect between Ru and Ru_(2)P at the heterointerfaces,leading to a well-modulated electronic structure with optimized hydrogen adsorption strength and enhanced electrical conductivity for efficient HER electrocatalysis.In addition,the overall synthetic strategy can be generalized for the synthesis of a series of transitional metal phosphide-based nanofibers,thereby holding a remarkable capacity for various potential applications. 展开更多
关键词 hydrogen evolution reaction Ru-based electrocatalysts HETEROSTRUCTURE carbon nanofibers ELECTROCATALYSIS
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