High-Performance Materials from Bio-based Feedstocks

Здесь есть возможность читать онлайн «High-Performance Materials from Bio-based Feedstocks» — ознакомительный отрывок электронной книги совершенно бесплатно, а после прочтения отрывка купить полную версию. В некоторых случаях можно слушать аудио, скачать через торрент в формате fb2 и присутствует краткое содержание. Жанр: unrecognised, на английском языке. Описание произведения, (предисловие) а так же отзывы посетителей доступны на портале библиотеки ЛибКат.

High-Performance Materials from Bio-based Feedstocks: краткое содержание, описание и аннотация

Предлагаем к чтению аннотацию, описание, краткое содержание или предисловие (зависит от того, что написал сам автор книги «High-Performance Materials from Bio-based Feedstocks»). Если вы не нашли необходимую информацию о книге — напишите в комментариях, мы постараемся отыскать её.

High-Performance Materials from Bio-based Feedstocks
High-Performance Materials from Bio-based Feedstocks
The latest advancements in the production, properties, and performance of bio-based feedstock materials
www.wiley.com/go/rrs High-Performance Materials from Bio-based Feedstocks
High-Performance Materials from Bio-based Feedstocks

High-Performance Materials from Bio-based Feedstocks — читать онлайн ознакомительный отрывок

Ниже представлен текст книги, разбитый по страницам. Система сохранения места последней прочитанной страницы, позволяет с удобством читать онлайн бесплатно книгу «High-Performance Materials from Bio-based Feedstocks», без необходимости каждый раз заново искать на чём Вы остановились. Поставьте закладку, и сможете в любой момент перейти на страницу, на которой закончили чтение.

Тёмная тема
Сбросить

Интервал:

Закладка:

Сделать

120 120. Tang, Z.E., Lim, S., Pang, Y.L. et al. (2020). Utilisation of biomass wastes based activated carbon supported heterogeneous acid catalyst for biodiesel production. Renewable Energy 158: 91–102. https://doi.org/10.1016/j.renene.2020.05.119.

121 121. Zhang, Y., Lei, H., Yang, Z. et al. (2018). Renewable high‐purity mono‐phenol production from catalytic microwave‐induced pyrolysis of cellulose over biomass‐derived activated carbon catalyst. ACS Sustainable Chemistry and Engineering 6 (4): 5349–5357. https://doi.org/10.1021/acssuschemeng.8b00129.

122 122. Konwar, L.J., Das, R., Thakur, A.J. et al. (2014). Biodiesel production from acid oils using sulfonated carbon catalyst derived from oil‐cake waste. Journal of Molecular Catalysis A: Chemical 388–389: 167–176. https://doi.org/10.1016/j.molcata.2013.09.031.

123 123. Wang, C., Hu, Y., Chen, Q. et al. (2013). Bio‐oil upgrading by reactive distillation using p‐toluene sulfonic acid catalyst loaded on biomass activated carbon. Biomass and Bioenergy 56: 405–411. https://doi.org/10.1016/j.biombioe.2013.04.026.

124 124. Mateo, W., Lei, H., Villota, E. et al. (2020). Synthesis and characterization of sulfonated activated carbon as a catalyst for bio‐jet fuel production from biomass and waste plastics. Bioresource Technology 297: 122411. https://doi.org/10.1016/j.biortech.2019.122411.

125 125. Ahmad Farid, M.A., Hassan, M.A., Taufiq‐Yap, Y.H. et al. (2017). Production of methyl esters from waste cooking oil using a heterogeneous biomass‐based catalyst. Renewable Energy 114: 638–643. https://doi.org/10.1016/j.renene.2017.07.064.

126 126. Veerakumar, P., Panneer Muthuselvam, I., Hung, C. et al. (2016). Biomass‐derived activated carbon supported Fe3O4 nanoparticles as recyclable catalysts for reduction of nitroarenes. ACS Sustainable Chemistry and Engineering 4 (12): 6772–6782. https://doi.org/10.1021/acssuschemeng.6b01727.

127 127. Rusanen, A., Lahti, R., Lappalainen, K. et al. (2019). Catalytic conversion of glucose to 5‐hydroxymethylfurfural over biomass‐based activated carbon catalyst. Catalysis Today 357: 94–101. https://doi.org/10.1016/j.cattod.2019.02.040.

128 128. Patel, A.R., Asatkar, A., Patel, G. et al. (2019). Synthesis of rice husk derived activated mesoporous carbon immobilized palladium hybrid nano‐catalyst for ligand‐free Mizoroki‐Heck/Suzuki/Sonogashira cross‐coupling reactions. ChemistrySelect 4 (19): 5577–5584. https://doi.org/10.1002/slct.201900384.

129 129. Quan, C., Wang, H., and Gao, N. (2020). Development of activated biochar supported Ni catalyst for enhancing toluene steam reforming. International Journal of Energy Research 44 (7): 5749–5764. https://doi.org/10.1002/er.5335.

130 130. Zhu, L., Yin, S., Yin, Q. et al. (2015). Biochar: a new promising catalyst support using methanation as a probe reaction. Energy Science and Engineering 3 (2): 126–134. https://doi.org/10.1002/ese3.58.

131 131. Tabak, A., Sevimli, K., Kaya, M. et al. (2019). Preparation and characterization of a novel activated carbon component via chemical activation of tea woody stem. Journal of Thermal Analysis and Calorimetry 138 (6): 3885–3895. https://doi.org/10.1007/s10973‐019‐08387‐2.

132 132. Palomo, J., Rodríguez‐Cano, M.A., Rodríguez‐Mirasol, J. et al. (2019). On the kinetics of methanol dehydration to dimethyl ether on Zr‐loaded P‐containing mesoporous activated carbon catalyst. Chemical Engineering Journal 378: 122198. https://doi.org/10.1016/j.cej.2019.122198.

133 133. Akbayrak, S., Özçifçi, Z., and Tabak, A. (2020). Activated carbon derived from tea waste: a promising supporting material for metal nanoparticles used as catalysts in hydrolysis of ammonia borane. Biomass and Bioenergy 138: 105589. https://doi.org/10.1016/j.biombioe.2020.105589.

134 134. Cordero‐Lanzac, T., Palos, R., Arandes, J.M. et al. (2017). Stability of an acid activated carbon based bifunctional catalyst for the raw bio‐oil hydrodeoxygenation. Applied Catalysis B: Environmental 203: 389–399. https://doi.org/10.1016/j.apcatb.2016.10.018.

135 135. Meryemoglu, B., Irmak, S., and Hasanoglu, A. (2016). Production of activated carbon materials from kenaf biomass to be used as catalyst support in aqueous‐phase reforming process. Fuel Processing Technology 151: 59–63. https://doi.org/10.1016/j.fuproc.2016.05.040.

136 136. Titirici, M.M., Thomas, A., Yu, S.H. et al. (2007). A direct synthesis of mesoporous carbons with bicontinuous pore morphology from crude plant material by hydrothermal carbonization. Chemistry of Materials 19 (17): 4205–4212. https://doi.org/10.1021/cm0707408.

137 137. Titirici, M.M., Thomas, A., and Antonietti, M. (2007). Back in the black: hydrothermal carbonization of plant material as an efficient chemical process to treat the CO2 problem? New Journal of Chemistry 31 (6): 787–789. https://doi.org/10.1039/b616045j.

138 138. Joo, J.B., Kim, Y.J., Kim, W. et al. (2008). Simple synthesis of graphitic porous carbon by hydrothermal method for use as a catalyst support in methanol electro‐oxidation. Catalysis Communications 10 (3): 267–271. https://doi.org/10.1016/j.catcom.2008.08.031.

139 139. Morais, R.G., Rey‐Raap, N., Figueiredo, J.L. et al. (2020). Highly electroactive N–Fe hydrothermal carbons and carbon nanotubes for the oxygen reduction reaction. Journal of Energy Chemistry 50: 260–270. https://doi.org/10.1016/j.jechem.2020.03.039.

140 140. Wen, Z., Ma, Z., Mai, F. et al. (2019). Catalytic ethanolysis of microcrystalline cellulose over a sulfonated hydrothermal carbon catalyst. Catalysis Today 355: 272–279. https://doi.org/10.1016/j.cattod.2019.05.070.

141 141. Wu, Q., Zhang, G., Gao, M. et al. (2019). Clean production of 5‐hydroxymethylfurfural from cellulose using a hydrothermal/biomass‐based carbon catalyst. Journal of Cleaner Production 213: 1096–1102. https://doi.org/10.1016/j.jclepro.2018.12.276.

142 142. Wataniyakul, P., Boonnoun, P., Quitain, A.T. et al. (2018). Preparation of hydrothermal carbon as catalyst support for conversion of biomass to 5‐hydroxymethylfurfural. Catalysis Communications 104: 41–47. https://doi.org/10.1016/j.catcom.2017.10.014.

143 143. Hu, W., Tong, W., Li, Y. et al. (2020). Hydrothermal route‐enabled synthesis of sludge‐derived carbon with oxygen functional groups for bisphenol A degradation through activation of peroxymonosulfate. Journal of Hazardous Materials 388: 121801. https://doi.org/10.1016/j.jhazmat.2019.121801.

144 144. Wataniyakul, P., Boonnoun, P., Quitain, A.T. et al. (2018). Preparation of hydrothermal carbon acid catalyst from defatted rice bran. Industrial Crops and Products 117: 286–294. https://doi.org/10.1016/j.indcrop.2018.03.002.

145 145. Ibrahim, S.F., Asikin‐Mijan, N., Ibrahim, M.L. et al. (2020). Sulfonated functionalization of carbon derived corncob residue via hydrothermal synthesis route for esterification of palm fatty acid distillate. Energy Conversion and Management 210: 112698. https://doi.org/10.1016/j.enconman.2020.112698.

146 146. Yamaguchi, D., Kitano, M., Suganuma, S. et al. (2009). Hydrolysis of cellulose by a solid acid catalyst under optimal reaction conditions. Journal of Physical Chemistry C 113 (8): 3181–3188. https://doi.org/10.1021/jp808676d.

147 147. Zong, M.H., Duan, Z.Q., Lou, W.Y. et al. (2007). Preparation of a sugar catalyst and its use for highly efficient production of biodiesel. Green Chemistry 9 (5): 434–437. https://doi.org/10.1039/b615447f.

148 148. Yao, Y., Lian, C., Wu, G. et al. (2017). Synthesis of “sea urchin”‐like carbon nanotubes/porous carbon superstructures derived from waste biomass for treatment of various contaminants. Applied Catalysis B: Environmental 219: 563–571. https://doi.org/10.1016/j.apcatb.2017.07.064.

149 149. Ming, J., Liu, R., Liang, G. et al. (2011). Knitting an oxygenated network‐coat on carbon nanotubes from biomass and their applications in catalysis. Journal of Materials Chemistry 21 (29): 10929–10934. https://doi.org/10.1039/c1jm10989h.

Читать дальше
Тёмная тема
Сбросить

Интервал:

Закладка:

Сделать

Похожие книги на «High-Performance Materials from Bio-based Feedstocks»

Представляем Вашему вниманию похожие книги на «High-Performance Materials from Bio-based Feedstocks» списком для выбора. Мы отобрали схожую по названию и смыслу литературу в надежде предоставить читателям больше вариантов отыскать новые, интересные, ещё непрочитанные произведения.


Отзывы о книге «High-Performance Materials from Bio-based Feedstocks»

Обсуждение, отзывы о книге «High-Performance Materials from Bio-based Feedstocks» и просто собственные мнения читателей. Оставьте ваши комментарии, напишите, что Вы думаете о произведении, его смысле или главных героях. Укажите что конкретно понравилось, а что нет, и почему Вы так считаете.

x