Wellcome

Nanomaterials in Biofuels Research (Record no. 549587)

MARC details
000 -LEADER
fixed length control field 04961nam a22006375i 4500
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control field 978-981-13-9333-4
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fixed length control field cr nn 008mamaa
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 200309s2020 si | s |||| 0|eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9789811393334
-- 978-981-13-9333-4
024 7# -
-- 10.1007/978-981-13-9333-4
-- doi
050 #4 - LIBRARY OF CONGRESS CALL NUMBER
-- QK861-899
072 #7 -
-- PST
-- bicssc
-- SCI007000
-- bisacsh
-- PST
-- thema
-- PSB
-- thema
082 04 -
Classification number 572.572
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245 10 - TITLE STATEMENT
Title Nanomaterials in Biofuels Research
Statement of responsibility, etc edited by Manish Srivastava, Neha Srivastava, P. K. Mishra, Vijai Kumar Gupta.
250 ## - EDITION STATEMENT
Edition statement 1st ed. 2020.
300 ## - PHYSICAL DESCRIPTION
Extent XIII, 307 p. 73 illus., 19 illus. in color.
Other physical details online resource.
505 0# -
Formatted contents note Chapter 1. Biofuel; types and process overview -- Chapter 2. Applications of plant based natural products to synthesize nanomaterial-Part-i -- Chapter 3. Application of plant based natural product to synthesize nanomaterial-Part-2 -- Chapter 4. Green synthesis approach to fabricate nanomaterials -- Chapter 5. Nanomaterials; types, synthesis and characterization -- Chapter 6. Nanotechnology: an application in biofuel production nanomaterial synthesis and mechanism for enzyme immobilization-part-i -- Chapter 7. Nanomaterial synthesis and mechanism for enzyme immobilization-part-ii -- Chapter 8. Nanomaterial synthesis and mechanism for enzyme immobilization-part-ii -- Chapter 9. Nanomaterials immobilized biocatalysts for biofuel production from lignocellulose biomass -- Chapter 10. Carbon nanotubes synthesized by green/ecofriendly technique potential for bioenergy applications -- Chapter 11. Synthesis of iron oxide nanomaterials for biofuels applications. .
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Topical term or geographic name as entry element Plant biochemistry.
Topical term or geographic name as entry element Environmental engineering.
Topical term or geographic name as entry element Biotechnology.
Topical term or geographic name as entry element Environmental management.
Topical term or geographic name as entry element Microbiology.
Topical term or geographic name as entry element Nanochemistry.
Topical term or geographic name as entry element Plant Biochemistry.
Topical term or geographic name as entry element Environmental Engineering/Biotechnology.
Topical term or geographic name as entry element Environmental Management.
Topical term or geographic name as entry element Microbiology.
Topical term or geographic name as entry element Nanochemistry.
700 1# -
Personal name Srivastava, Manish.
Relator term editor.
Personal name Srivastava, Neha.
Relator term editor.
Personal name Mishra, P. K.
Relator term editor.
Personal name Gupta, Vijai Kumar.
Relator term editor.
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Corporate name or jurisdiction name as entry element SpringerLink (Online service)
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Uniform Resource Identifier https://doi.org/10.1007/978-981-13-9333-4
245 10 - TITLE STATEMENT
-- [electronic resource] /
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-- Singapore :
-- Springer Singapore :
-- Imprint: Springer,
-- 2020.
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-- text
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-- online resource
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-- text file
-- PDF
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-- Clean Energy Production Technologies,
-- 2662-687X
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-- As renewable energy sources, biofuels have tremendous potential to replace fossil fuels in future energy scenarios, offering green alternative energy sources. However, though such fuels could mean a significant reduction in environmental pollution, they are still far from practical implementation due to their high production costs and technical issues. Consequently, efforts are being made around the globe to achieve the cost-effective production of biofuels. In this context, the use of nanomaterials to improve biofuels production efficiency is a vital, emerging area. Nanomaterials are attracting attention due to their versatile physicochemical properties and may improve the production process for various biofuels by acting as catalysts. However, this area is still in its infancy. To improve the practical viability of the biofuels production process, it is essential to focus on the specific type of nanomaterial used, its synthesis, and its specific effects on the process parameters. This book explores the potential advantages and feasibility of various aspects of nanomaterials with regard to improving the current biofuels production process, making it a valuable resource for a broad readership.
-- https://scigraph.springernature.com/ontologies/product-market-codes/L14021
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773 0# -
-- Springer Nature eBook
776 08 -
-- Printed edition:
-- 9789811393327
-- Printed edition:
-- 9789811393341
-- Printed edition:
-- 9789811393358
830 #0 -
-- Clean Energy Production Technologies,
-- 2662-687X
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-- ZDB-2-SBL
-- ZDB-2-SXB
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-- Biomedical and Life Sciences (SpringerNature-11642)
-- Biomedical and Life Sciences (R0) (SpringerNature-43708)

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