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麦芽低聚糖工艺研究中高效液相色谱的应用
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作者 吴红京 唐根源 +1 位作者 李昊 李志达 《福建分析测试》 CAS 1997年第4期761-763,共3页
本文介绍高效液相色谱在双酶协同作用酶解制取麦芽低聚糖工艺研究中的应用。作者以C_(18)柱为分离柱,水作流动相,利用折光检测器来检测麦芽低聚糖产品中的七种糖,同时评估了补加酶量与麦芽低聚糖中麦芽三糖至六糖含量的关系,并测定了二... 本文介绍高效液相色谱在双酶协同作用酶解制取麦芽低聚糖工艺研究中的应用。作者以C_(18)柱为分离柱,水作流动相,利用折光检测器来检测麦芽低聚糖产品中的七种糖,同时评估了补加酶量与麦芽低聚糖中麦芽三糖至六糖含量的关系,并测定了二次确认实验中麦芽低聚糖产品中各糖的含量。 展开更多
关键词 木薯淀粉 Α-淀粉酶 异淀粉酶 麦芽低聚糖 协同水解作用
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2D materials modulating layered double hydroxides for electrocatalytic water splitting 被引量:5
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作者 Jinling Cheng Dingsheng Wang 《Chinese Journal of Catalysis》 SCIE EI CAS CSCD 2022年第6期1380-1398,共19页
Exploring highly efficient electrochemical water splitting catalysts has recently attracted extensive research interest from both fundamental researches and practical applications.Transition metal‐based layered doubl... Exploring highly efficient electrochemical water splitting catalysts has recently attracted extensive research interest from both fundamental researches and practical applications.Transition metal‐based layered double hydroxides(LDHs)have been proved to be one of the most efficient materials for oxygen evolution reaction(OER),however,still suffered from low conductivity and sluggish kinetics for hydrogen evolution reaction(HER),which largely inhibited the overall water splitting efficiency.To address this dilemma,enormous approaches including doping regulation,intercalation tuning and defect engineering are therefore rationally designed and developed.Herein,we focus on the recent exciting progress of LDHs hybridization with other two‐dimensional(2D)materials for water splitting reactions,not barely for enhancing OER efficiency but also for boosting HER activity.Particularly,the structural features,morphologies,charge transfer and synergistic effects for the heterostructure/heterointerface that influence the electrocatalytic performance are discussed in details.The hybrid 2D building blocks not only serve as additional conductivity and structural supported but also promote electron transfer at the interfaces and further enhance the electrocatalytic performance.The construction and application of the nanohybrid materials will guide a new direction in developing multifunctional materials based on LDHs,which will contribute to energy conversion and storage. 展开更多
关键词 Layered double hydroxide 2D materials HYBRIDIZATION Synergistic effect Electrocatalytic water splitting
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Layered transition-metal hydroxides for alkaline hydrogen evolution reaction 被引量:4
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作者 Qianfeng Liu Erdong Wang Gongquan Sun 《Chinese Journal of Catalysis》 SCIE EI CAS CSCD 北大核心 2020年第4期574-591,共18页
Hydrogen is a promising sustainable energy to replace fossil fuels owning to its high specific energy and environmental friendliness.Alkaline water electrolysis has been considered as one of the most prospective techn... Hydrogen is a promising sustainable energy to replace fossil fuels owning to its high specific energy and environmental friendliness.Alkaline water electrolysis has been considered as one of the most prospective technologies for large scale hydrogen production.To boost the sluggish kinetics of hydrogen evolution reaction(HER)in alkaline media,abundant materials have been designed and fabricated.Herein,we summarize the key achievements in the development of layered transition-metal hydroxides[TM(OH)x]for efficient alkaline HER.Based on the structure of TM(OH)x,the mechanism of synergistic effect between TM(OH)x and HER active materials is illuminated firstly.Then,recent progress of TM(OH)x-based HER catalysts to optimize the synergistic effect are categorized as TM(OH)x and active materials,including species,structure,morphology and interaction relationship.Furthermore,TM(OH)x-based overall water splitting electrocatalysts and electrodes are summarized in the design principles for high activity and stability.Finally,some of key challenges for further developments and applications of hydrogen production are proposed. 展开更多
关键词 Transition-metal hydroxides Hydrogen evolution reaction Water splitting ELECTROCATALYSIS Synergistic effect
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