Improving the efficiency of enzymatic hydrolysis of Eucalyptus residues with a modified aqueous ammonia soaking method

Author:

Huo Dan12345,Yang Qiulin126,Fang Guigan7,Liu Qiujuan1,Si Chuanling1,Hou Qingxi1,Li Bin8

Affiliation:

1. Tianjin Key Laboratory of Pulp and Paper , College of Papermaking Science and Technology , Tianjin University of Science and Technology , Tianjin 300457 , China

2. Key Laboratory of Renewable Energy , Chinese Academy of Sciences , Guangzhou 510640 , China

3. State Key Laboratory of Pulp and Paper Engineering , South China University of Technology , Guangzhou , China , 510640

4. Jiangsu Province Biomass Energy and Materials Laboratory , Institute of Chemical Industry of Forest Products , CAF , Nanjing 210042 , China

5. Jiangsu Key Lab of Biomass-based Green Fuels and Chemicals , Nanjing Forestry University , Nanjing 210042 , China

6. Key Laboratory of Recycling and Eco-treatment of Waste Biomass of Zhejiang Province , Zhejiang University of Science and Technology , Hangzhou 310023 , China

7. Institute of Chemical Industry of Forest Products , Chinese Academy of Forestry , Nanjing 210042 , Jiangsu , China

8. CAS Key Laboratory of Bio-based Materials , Qingdao Institute of Bioenergy and Bioprocess Technology , Chinese Academy of Sciences , Qingdao 266101 , China

Abstract

Abstract Eucalyptus residues from pulp mill were pretreated with aqueous ammonia soaking (AAS) method to improve the efficiency of enzymatic hydrolysis. The optimized condition of AAS was obtained by response surface methodology. Meanwhile, hydrogen peroxide was introduced into the AAS system to modify the AAS pretreatment (AASP). The results showed that a fermentable sugar yield of 64.96 % was obtained when the eucalypt fibers were pretreated at the optimal conditions, with 80 % of ammonia (w/w) for 11 h and keeping the temperature at 90 °C. In further research it was found that the addition of H2O2 to the AAS could improve the pretreatment efficiency. The delignification rate and enzymatic digestibility were increased to 64.49 % and 73.85 %, respectively, with 5 % of hydrogen peroxide being used. FTIR analysis indicated that most syringyl and guaiacyl lignin and a trace amount of xylan were degraded and dissolved during the AAS and AASP pretreatments. The CrI of the raw material was increased after AAS and AASP pretreatments, which was attributed to the removal of amorphous portion. SEM images showed that microfibers were separated and explored from the initial fiber structure after AAS pretreatment, and the AASP method could improve the destructiveness of the fiber surface.

Funder

Chinese Academy of Sciences

South China University of Technology

Nanjing Forestry University

Chinese Academy of Forestry

Zhejiang University of Science and Technology

Tianjin University of Science and Technology

Publisher

Walter de Gruyter GmbH

Subject

General Materials Science,Forestry

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