Zobrazeno 1 - 6
of 6
pro vyhledávání: '"Fangmeng ZHU"'
Autor:
Zhiguo Wang, Shuo Zhou, Shuangling Zhang, Sa Zhang, Fangmeng Zhu, Xiaolu Jin, Zhenming Chen, Xiaoling Xu
Publikováno v:
Scientific Reports, Vol 7, Iss 1, Pp 1-11 (2017)
Abstract A novel aldo-keto reductase Tm1743 characterized from Thermotoga maritima was explored as an effective biocatalyst in chiral alcohol production. Natural Tm1743 catalyzes asymmetric reduction of ethyl 2-oxo-4-phenylbutyrate (EOPB) at high eff
Externí odkaz:
https://doaj.org/article/9231e0b840834125b00578885c87fc8a
Publikováno v:
IEEE Robotics and Automation Letters. 8:1555-1562
Publikováno v:
Organic Preparations and Procedures International. 52:510-516
The unnatural amino acid (S)-2,6-dimethyltyrosine [(S)-DMT, Figure 1] is a very important small molecule for the preparation of opioid receptor modulators. It has been used to effectively improve t...
Autor:
Songbai Cheng, Ruicong Xu, Yihua Xu, Liguan He, Yuecong Tan, Fangmeng Zhu, Huaiqin Zhang, Jianyuan Wang
Publikováno v:
Annals of Nuclear Energy. 133:283-296
During a core disruptive accident of sodium-cooled fast reactors, the fragmented debris released from the reactor core will start to sediment and form debris beds within the lower plenum region of the reactor vessel. To ascertain the characteristics
Publikováno v:
Annals of Nuclear Energy. 124:150-163
Motivated to further understand the effect of sodium boiling on the debris bed formation behavior that might be encountered during a core disruptive accident of sodium-cooled fast reactors, in this work a series of new experiments has been performed
Autor:
Fangmeng Zhu, Shuo Zhou, Xiaolu Jin, Zhang Sa, Zhang Shuangling, Zhiguo Wang, Zhenming Chen, Xiaoling Xu
Publikováno v:
Scientific Reports, Vol 7, Iss 1, Pp 1-11 (2017)
Scientific Reports
Scientific Reports
A novel aldo-keto reductase Tm1743 characterized from Thermotoga maritima was explored as an effective biocatalyst in chiral alcohol production. Natural Tm1743 catalyzes asymmetric reduction of ethyl 2-oxo-4-phenylbutyrate (EOPB) at high efficiency,