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Books on the topic 'N2 capture and conversion'

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1

Li, Lan, Winnie Wong-Ng, Kevin Huang, and Lawrence P. Cook, eds. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2018. http://dx.doi.org/10.1002/9781119231059.

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2

Feric, Tony Gordon. Thermal, Structural and Transport Behaviors of Nanoparticle Organic Hybrid Materials Enabling the Integrated Capture and Electrochemical Conversion of Carbon Dioxide. [New York, N.Y.?]: [publisher not identified], 2022.

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3

Wang, Shuoxun. A Study of Carbon Dioxide Capture and Catalytic Conversion to Methane using a Ruthenium, “Sodium Oxide” Dual Functional Material: Development, Performance and Characterizations. [New York, N.Y.?]: [publisher not identified], 2018.

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4

Novel Liquid-Like Nanoscale Hybrid Materials with Tunable Chemical and Physical Properties as Dual-Purpose Reactive Media for Combined Carbon Capture and Conversion. [New York, N.Y.?]: [publisher not identified], 2018.

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5

Treviño, Martha Alejandra Arellano. A study of catalytic metals and alkaline metal oxides leading to the development of a stable Ru-doped Ni Dual Function Material for CO2 capture from flue gas and in-situ catalytic conversion to methane. [New York, N.Y.?]: [publisher not identified], 2020.

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6

Desideri, Umberto, Giampaolo Manfrida, and Enrico Sciubba, eds. ECOS 2012. Florence: Firenze University Press, 2012. http://dx.doi.org/10.36253/978-88-6655-322-9.

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The 8-volume set contains the Proceedings of the 25th ECOS 2012 International Conference, Perugia, Italy, June 26th to June 29th, 2012. ECOS is an acronym for Efficiency, Cost, Optimization and Simulation (of energy conversion systems and processes), summarizing the topics covered in ECOS: Thermodynamics, Heat and Mass Transfer, Exergy and Second Law Analysis, Process Integration and Heat Exchanger Networks, Fluid Dynamics and Power Plant Components, Fuel Cells, Simulation of Energy Conversion Systems, Renewable Energies, Thermo-Economic Analysis and Optimisation, Combustion, Chemical Reactors, Carbon Capture and Sequestration, Building/Urban/Complex Energy Systems, Water Desalination and Use of Water Resources, Energy Systems- Environmental and Sustainability Issues, System Operation/ Control/Diagnosis and Prognosis, Industrial Ecology.
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7

Carbon Dioxide Capture and Conversion. Elsevier, 2022. http://dx.doi.org/10.1016/c2020-0-02634-4.

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8

Advances in CO2 Capture, Sequestration, and Conversion. American Chemical Society, 2016.

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9

Nanomaterials for CO2 Capture, Storage, Conversion and Utilization. Elsevier, 2021. http://dx.doi.org/10.1016/c2019-0-04209-4.

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10

Mazari, Shaukat Ali, Mubarak Nabisab Mujawar, and Manoj Tripathi. Nanomaterials for Carbon Dioxide Capture and Conversion Technologies. Elsevier, 2022.

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11

Mazari, Shaukat Ali, Mubarak Nabisab Mujawar, and Manoj Tripathi. Nanomaterials for Carbon Dioxide Capture and Conversion Technologies. Elsevier, 2022.

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12

Benard, Pierre, Phuong Nguyen Tri, Tuán Anh Nguyen, Haobin Wu, and Simon Barnabe. Nanomaterials for CO2 Capture, Storage, Conversion and Utilization. Elsevier, 2021.

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13

Nanomaterials for CO2 Capture, Storage, Conversion and Utilization. Elsevier, 2021.

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14

Li, Lan, Kevin Huang, Winnie Wong-Ng, and Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Incorporated, John, 2018.

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15

Li, Lan, Kevin Huang, Winnie Wong-Ng, and Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Incorporated, John, 2018.

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16

Nguyen, Van Huy, Sonil Nanda, and Dai-Viet N. Vo. Carbon Dioxide Capture and Conversion: Advanced Materials and Processes. Elsevier, 2022.

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17

Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley-American Ceramic Society, 2018.

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18

Nguyen, Van Huy, Sonil Nanda, and Dai-Viet N. Vo. Carbon Dioxide Capture and Conversion: Advanced Materials and Processes. Elsevier, 2022.

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19

Li, Lan, Kevin Huang, Winnie Wong-Ng, and Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Limited, John, 2018.

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20

Smith, Chris. Conversion Code: Capture Internet Leads, Create Quality Appointments, Close More Sales. Wiley & Sons, Incorporated, John, 2022.

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21

Kumar, Ashok, Susheel Kalia, and Swati Sharma. CO2-Philic Polymers, Nanocomposites and Solvents: Capture, Conversion and Industrial Products. Elsevier, 2022.

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22

Kumar, Ashok, Susheel Kalia, and Swati Sharma. CO2-Philic Polymers, Nanocomposites and Solvents: Capture, Conversion and Industrial Products. Elsevier, 2022.

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23

Smith, Chris. Conversion Code: Capture Internet Leads, Create Quality Appointments, Close More Sales. Wiley & Sons, Limited, John, 2022.

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24

Smith, Chris. Conversion Code: Capture Internet Leads, Create Quality Appointments, Close More Sales. Wiley & Sons, Incorporated, John, 2022.

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25

Smith, Chris. Conversion Code: Capture Internet Leads, Create Quality Appointments, Close More Sales. Wiley & Sons, Incorporated, John, 2016.

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26

Smith, Chris. Conversion Code: Capture Internet Leads, Create Quality Appointments, Close More Sales. Wiley & Sons, Incorporated, John, 2016.

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27

Kawatra, S. Komar. Advanced Coal Preparation and Beyond: CO2 Capture Conversion of Waste to Byproducts. Taylor & Francis Group, 2020.

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28

The conversion code: Capture Internet leads, create quality appointments, close more sales. 2016.

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29

Board on Energy and Environmental Systems, Committee on Novel Approaches to the Management of Greenhouse Gases from Energy Systems, Division on Earth and Life Studies, National Research Council, and Division on Engineering and Physical Sciences. Novel Approaches to Carbon Management: Separation, Capture, Sequestration, and Conversion to Useful Products - Workshop Report. National Academies Press, 2003.

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30

(US), National Research Council, and Committee on Novel Approaches to the Management of Greenhouse Gases from Energy Systems. Novel Approaches to Carbon Management: Separation, Capture, Sequestration, and Conversion to Useful Products - Workshop Report. National Academies Press, 2003.

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31

Board on Earth Sciences and Resources, Board on Energy and Environmental Systems, Division on Earth and Life Studies, National Research Council, and Division on Engineering and Physical Sciences. Novel Approaches to Carbon Management : Separation, Capture, Sequestration, and Conversion to Useful Products: Workshop Report. National Academies Press, 2003.

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32

Board on Earth Sciences and Resources, Board on Energy and Environmental Systems, Division on Earth and Life Studies, National Research Council, and Division on Engineering and Physical Sciences. Novel Approaches to Carbon Management : Separation, Capture, Sequestration, and Conversion to Useful Products: Workshop Report. National Academies Press, 2003.

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33

Raw Workflow from Capture to Archives: A Complete Digital Photographer's Guide to Raw Imaging. Focal Press, 2006.

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34

Kumar, Amit. Photocatalysis. Edited by Gaurav Sharma. Materials Research Forum LLC, 2021. http://dx.doi.org/10.21741/9781644901359.

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Photocatalysis is important in fighting environmental pollution, such as pharmaceutical effluents, dyes, pesticides and endocrine disruptors. It is also used for the production of clean energy, e.g. by way of hydrogen production from watersplitting, or CO2 conversion into fuels. Further, photocatalytic N2 fixation is promising for achieving sustainable ammonia synthesis. The book discusses new materials and reaction engineering techniques, such as heterojunction formations, composites, ion exchangers, photocatalytic membranes, etc.
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35

Wolf, E. L. Energy Storage, Distribution, Use and Climate Impact. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0011.

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The large-scale energy grid often comprises both AC and DC transmission lines. DC transmission at ultrahigh voltages is more efficient, but consumers need AC at lower voltage so that AC/DC conversion stations are key elements. In modern conversion stations large silicon thyristors are key devices. Energy storage in pumped-hydro installations can be supplemented by compressed air storage. Thermal plants can store energy in molten salts to provide continuous power for consumers. Battery technology is expensive at grid scale but is expanding. The possibility of carbon capture at power plants is discussed. Energy in this chapter is assumed to be electrical energy, with a large portion devoted to the electric grid.
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