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| 1 | Who is Going to Supply the Milk to China's South?显示文摘中国的奶店工业在最近的年里经历了快速的扩大,与从 2000 ~ 2006 的 23.8% 的平均年度生长率。然而,在那里存在在牛奶生产和消费的严肃的地理分发不平衡。约 85% 中国的牛奶在北中国被生产,在 40% 这个国家的人口住的地方。相反,仅仅大约 15% 牛奶在中国的南方被生产,在 60% 中国的人口住的地方。这在南部的中国导致了在牛奶生产和消费之间的重要差距,这差距被期望升起。这篇论文考虑中国的牛奶需求和供应状况,分析可能的潜力让中国扩展它的牛奶生产并且探索为遇见牛奶需求的选择—供应缺乏。政策和贸易含意被讨论。 | Jimin Wang Zhangyue Zhou Qiuhong Shen | 2008 | China & World Economy2008,16,4: | 3 |
| 2 | Single-particle trapping and dynamic manipulation with holographic optical surface-wave tweezers显示文摘Optical surface waves have widely been used in optical tweezers systems for trapping particles sized from the nanoto microscale,with specific importance and needs in applications of super-resolved detection and imaging if a single particle can be trapped and manipulated accurately.However,it is difficult to achieve such trapping with high precision in conventional optical surface-wave tweezers.Here,we propose and experimentally demonstrate a new method to accurately trap and dynamically manipulate a single particle or a desired number of particles in holographic optical surface-wave tweezers.By tailoring the optical potential wells formed by surface waves,we achieved trapping of the targeted single particle while pushing away all surrounding particles and further dynamically controlling the particle by a holographic tweezers beam.We also prove that different particle samples,including gold particles and biological cells,can be applied in our system.This method can be used for different-type optical surface-wave tweezers,with significant potential applications in single-particle spectroscopy,particle sorting,nano-assembly,and others. | XI XIE XIANYOU WANG CHANGJUN MIN HAIXIANG MA YUNQI YUAN ZHANGYU ZHOU YUQUAN ZHANG JING BU XIAOCONG YUAN | 2022 | Photonics Research2022,10,1: | 3 |
| 3 | Changing bilateral trade between China and India显示文摘 | WU Yanrui ZHOU Zhangyue | 2006 | Journal of Asian Economics2006,17,3: | 1 |
| 4 | Supply Chain Optimization of Continuous Process Industries with Sustainability Considerations 显示文摘 | Zhou Zhangyu Cheng Siwei | 2000 | Computers and Chemical Engineering2000,,24: | 1 |
| 5 | Supply chain optimization of continuous process industries with sustainability consideration 显示文摘 | Zhou Zhangyu Cheng Siwei Hua Ben | 2000 | Computers & Chemical Engineering2000,24,27: | 1 |
| 6 | Supply chain optimization of continuous process industries with sustainability considerations 显示文摘 | Zhou Zhangyu Cheng Siwei Hua Ben | 2000 | Computers & Chem Eng2000,24,27: | 1 |
| 7 | Supply chain optimization of continuous process industries with sustainability considerations显示文摘 | Zhou Zhangyu Cheng Siwei Hua Ben | 2000 | Computers & Chem Eng2000,24,27: | 1 |
| 8 | Income Inequality in Rural China: Regression-based Decomposition Using Household Data显示文摘 | Guanghua Wan Zhangyue Zhou | 2005 | Review of Development Economics2005,9,1: | 1 |
| 9 | Achieving Food Security in China: Past Three Decades and beyond 显示文摘 | Zhangyue Zhou | 2010 | China Agricultural Economic Re- view2010,2,03: | 1 |
| 10 | Rising Consumption of Animal Products in China and India:National and Global Implications显示文摘在过去的二十年,动物产品的消费在中国和印度很快增加了,由升起的收入和大人口开车。对动物产品的如此的强壮的要求能在他们的自己和全球食物上有实质的影响并且喂需求和供应。这篇论文在中国和印度检验对动物产品的升起的需求的性质并且讨论国家、全球的含意。 | Wenge Fu Vasant P.Gandhi Lijuan Cao Hongbo Liu Zhangyue Zhou | 2012 | China & World Economy2012,20,3: | 1 |
| 11 | Income Inequality in Rural China: Regression-based Decomposition Using Household Data 显示文摘 | Guanghua Wan and Zhangyue Zhou | 2005 | Review of Development Economics2005,9,1: | 1 |
| 12 | Food demand and the food security challenge with rapid economic growth in the emerging economies of India and China显示文摘 | Vasant P. Gandhi Zhangyue Zhou | 2014 | Food Research International2014,,: | 1 |
| 13 | 'Changing bilateral trade between China and India'显示文摘 | Wu Yanrui Zhou Zhangyue | 2006 | Journal of Asian Economics2006,17,3: | 1 |
| 14 | Supply chain optimization of con tinuous process industries with sustainability considerations显示文摘 | Cheng Siwei Hua Ben | 2000 | Computer a nd Chemical Engineering2000,24,: | 1 |
| 15 | Supply chain optimization of continuous process industries with sustainability considerations 显示文摘 | Zhou Zhangyu Cheng Siwei Hua Ben | 2000 | Computers and Chemical Engineering2000,24,27: | 1 |
| 16 | Highly efficient perovskite solar cells by building 2D/3D perovskite heterojuction in situ for interfacial passivation and energy level adjustment显示文摘Passivating the interfacial defects and reducing the interfacial non-radiative recombination losses are the keys to improving the photovoltaic performance of three-dimensional(3D)perovskite solar cells(PVSCs).Stacking two dimensional(2D)perovskites on 3D perovskite is a promising method for interfacial treatment that improves the stability and efficiency of PVSCs.Herein,we developed conjugated fluorinated benzimidazolium cation(FBIm+)which can be inserted between 3D perovskite and holetransporting layer(HTL)to form 2D perovskite in situ.The 2D single crystal structures of(FBIm)_(2)Pb I4and(FBIm)_(2)Pb Br_(4)were achieved and confirmed by single-crystal X-ray diffraction(XRD),while few single crystals of 2D perovskite based on imidazolium or benzimidazolium anchors have been reported.The 2D perovskite can passivate the interfacial defects,induce better crystallinity and orientation,conduct lower trap density and extend carrier lifetime.Furthermore,the energy level arrangement can be regulated by changing the counterion from iodide to bromide,which can efficiently improve the hole extraction and device performances.As a consequence,the best efficiency of 23.00%for FBIm Br-incorporated devices was achieved,while only 20.72%for the control device.Meanwhile,the PVSCs modified by FBIm Br displayed excellent environmental stability due to the constructed hydrophobic 2D perovskite layer which can effectively block moisture permeation.This work develops a new path to design novel conjugated organic passivants to form 2D/3D perovskite structures. | Yaoyao Huang Zhangyu Yuan Jia Yang Shungao Yin Aihui Liang Gang Xie Chuizheng Feng Zhisheng Zhou Qifan Xue Yang Pan Fei Huang Yiwang Chen | 2023 | Science China Chemistry2023,66,2: | 0 |