By Yun Hang Hu
content material: CONTENTS; PREFACE; 1. SYNTHESIS AND CHARACTERIZATION OF FERRITE fabrics FOR THERMOCHEMICAL CO2 SPLITTING utilizing focused solar power; ANDREA AMBROSINI, ERIC N. COKER, MARK A. RODRIGUEZ, STEPHANIE LIVERS, LINDSEY R. EVANS, JAMES E. MILLER, AND ELLEN B. STECHEL; 2. PHOTOCATALYTIC aid OF CO2 utilizing H2 AS REDUCTANT OVER strong BASE PHOTOCATALYSTS; KENTARO TERAMURA AND TSUNEHIRO TANAKA; three. CO2 SPLITTING through THE sun THERMOCHEMICAL CYCLE according to ZN/ZNO REDOX REACTIONS; PETER G. LOUTZENHISER, ANTON MEIER, DANIEL GSTOEHL, AND ALDO STEINFELD; four. HYDROTHERMAL CONVERSION OF CO2 INTO VALUE-ADDED items: a possible know-how for bettering worldwide CARBON CYCLE; FANGMING JIN, ZHIBAO HUO, XU ZENG, AND HEIJI ENOMOTO; five. ELECTROCATALYTIC aid OF CO2 TO SMALL natural MOLECULE FUELS ON steel CATALYSTS; WENZHEN LI; 6. CO2 CHEMISTRY AT NANKAI team: CATALYTIC CONVERSION OF CO2 INTO VALUE-ADDED chemical substances; LIANG-NIAN HE, ZHEN-ZHEN YANG, AN-HUA LIU, AND JIAN GAO; 7. OXIDATIVE DEHYDROGENATION OF ETHANE TO AND
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Acknowledgments We gratefully acknowledge financial support from the Natural Science Foundation of China (Grant No. 20777054), and the National High Technology Research and Development Program ("863" Program) of China (No. 2009AA05Z405). References 1. 2. 3. 4. 5. 6. 7. 8. 9. 10. 11. 12. 13. 14. Jessop, P. ; Tai, C. C. Coord. Chem. Rev. 2004, 248, 2425–2442. Jessop, P. ; Noyori, R. Chem. Rev. 1995, 95, 259–272. ; Sakata, T. J. Electroanal. Chem. 1995, 391, 141–147. Barton, E. ; Rampulla, D. ; Bocarsly, A.
ACS Symposium Series; American Chemical Society: Washington, DC, 2010. ch003 Chapter 3 CO2 Splitting via the Solar Thermochemical Cycle Based on Zn/ZnO Redox Reactions Peter G. ch A two-step thermochemical cycle for splitting CO2 and processing into solar fuels via ZnO/Zn redox reactions is considered. The first, solar step is the endothermic dissociation of ZnO to Zn and O2. The second, non-solar step is the exothermic reduction of CO2 with Zn to CO and ZnO; the latter is recycled to the solar step.
The increase in formic acid may be attributed to the reduction of CO2. ; ACS Symposium Series; American Chemical Society: Washington, DC, 2010. ch004 Figure 5. HPLC chromatograms of liquid samples after reaction of glucose in the presence and absence of NaHCO3. Figure 6. Effect of the initial NaOH concentration on formic acid from glucose (Glucose, 5 mmol; temperature, 573 K; time, 60 min; water fill rate, 50 %). 2. Examination of CO2 Reduction into Formic Acid Formic acid formation from glucose in the absence of CO2 may be affected by the initial alkaline concentration; thus, the increase in formic acid may be attributed to the change in the initial pH caused by the presence of NaHCO3.
Advances in CO2 Conversion and Utilization by Yun Hang Hu