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Online since: February 2012
Authors: Rui Xia Yang, Ai Hua Chen, Wen Feng Duan, Han Min Tian, Feng Lan Tian
As the first breakthrough of DSSC came from successful thousands of times increasing the surface area of nanocrystalline TiO2 film, many reseatchers scrutinize the effect of their experimental process parameters on the physical structure of TiO2 films, such as thickness, porosity, surface area, and hence on the photovoltaic performance of DSSC, by large numerber of repeated experiments[3, 4].
The Journal of Physical Chemistry C, 2011
The Journal of Physical Chemistry C, 2011
Online since: November 2016
Authors: Marcelo Henrique Prado da Silva, Dindo Q. Mijares, Leila Rosa de Oliveira Cruz, Daniel Navarro da Rocha, José Brant de Campos, Rubens Lincoln Santana Blazutti Marçal, Paulo G. Coelho
Studies suggest that some calcium ions sites in the brushite/monetite structure can be aligned with calcium ions of hydroxyapatite, giving rise to an epitaxial growth and transformation to hydroxyapatite phase [2, 3].
Chang, Dental enamel-like hydroxyapatite transformed directly from monetite, Journal of Materials Chemistry, 22 (2012) 22637-22641
Chang, Dental enamel-like hydroxyapatite transformed directly from monetite, Journal of Materials Chemistry, 22 (2012) 22637-22641
Online since: February 2012
Authors: Lin Guo, Zheng Bo Chen, Xiao Jiao Mu, Jing Li, Li Dong Li
Electrochemical aptasensor for L-histidine detection via self-cleavage of DNAzymes and amplification of end-truncated elongated tetrahexaheral gold nanocrystals
Zhengbo Chen1†, Xiaojiao Mu1†, Jing Li2, Lidong Li3* and Lin Guo4*
School of Chemistry & Environment, Beihang University, Beijing, 100191, China
*Corresponding author.
A schematic of the self-cleaving DNAzyme-based electrochemical sensor. 2.2 Characterization of the End-truncated-ETHH-Au-NCs The prepared end-truncated-ETHH-Au-NCs were characterized by SEM image as shown in Fig. 1. it can be seen that quasi-one-dimensional structure of end-truncated ETHH Au NCs with distinct edges and corners and the particles have an average length and width of 55 ± 7 nm and 32 ± 5 nm, respectively.
A schematic of the self-cleaving DNAzyme-based electrochemical sensor. 2.2 Characterization of the End-truncated-ETHH-Au-NCs The prepared end-truncated-ETHH-Au-NCs were characterized by SEM image as shown in Fig. 1. it can be seen that quasi-one-dimensional structure of end-truncated ETHH Au NCs with distinct edges and corners and the particles have an average length and width of 55 ± 7 nm and 32 ± 5 nm, respectively.
Electrochemical Polymerization and Characterization of Poly(3-Methylthiophene) in Pure Ionic Liquids
Online since: August 2011
Authors: Xu Chun Song, Xia Wang, Li Jin Feng, Zhi Ai Yang, Rong Ma
Electrochemical Polymerization and Characterization of poly(3-methylthiophene) in Pure Ionic Liquids
Xia Wang1, a, Li Jin Feng 1, b, Zhi Ai Yang1,c , Rong Ma1,d
and Xu Chun Song1,e
1Department of Chemistry, Fujian Normal University, Fuzhou 350007, P.
The morphology, structure and electrochemical properties were investigated on the film.
The morphology, structure and electrochemical properties were investigated on the film.
Online since: July 2011
Authors: Christian Kloc, Ke Jie Tan, Ke Ke Zhang, Shu Qin Liang, Wai Hoong Kan, Subodh G Mhaisalkar
Mobility differences between oxidized and reduced state strongly indicated that the transport properties are limited by surface chemistry of organic semiconductor.
Therefore, the current efforts to tailor the molecular structure of organic semiconductors to achieve high-mobility charge-carrier transport should be complemented by efforts to control the state of the surface of organic semiconductors by defect and impurity examination.
Therefore, the current efforts to tailor the molecular structure of organic semiconductors to achieve high-mobility charge-carrier transport should be complemented by efforts to control the state of the surface of organic semiconductors by defect and impurity examination.
Online since: September 2011
Authors: Deng Li Sun, Jin Zhao Chen, Cheng Bo Cao, Mao Sheng Wan, Shuan Sun
Synthesis and properties of new anionic fluorescent brighteners
Jinzhao Chen1, Maosheng Wan1, Chengbo Cao1,2,3,a
Dengli Sun4, Shuan Sun4
1School of Chemistry and Chemical Engineering, Shandong University, Jinan, Shandong, 250100, China;
2Institute of Collagen Biological and Light Textile Functional Materials, Shandong University, Jinan 250061, China;
3Institute of Engineering Research , Shandong University, Jinan 250061, China;
4Shandong Fine Chemical Engineering Group Companys, Yantai, Shandong, 265400, China
a cbcao@sdu.edu.cn
Keywords: Fluorescent Brighteners, anion, synthesis, dyeing, properties.
Because of the common structure, the products have the similar shape of fluorescence excitation and emission spectra curve.
Because of the common structure, the products have the similar shape of fluorescence excitation and emission spectra curve.
Online since: April 2005
Authors: Regina Kijkowska, Racquel Z. LeGeros
LeGeros2,b
1
Institute of Inorganic Chemistry and Technology, Cracow University of Technology, Krakow,
Poland
2
Calcium Phosphate Research Laboratory, Department of Biomaterials, New York University
College of Dentistry, New York, New York USA
a
kij@chemia.pk.edu.pl, brzl1@nyu.edu
Keywords: lanthanide phosphates, preparation, properties.
The lanthanide phosphates, depending on the ionic radius, crystallize in hexagonal, isostructural with the mineral rabdophane (La � Tb), tetragonal (Ho � Lu and Y), isostructural with the xenotime (zircon - type) structure, while dysprosium phosphate can be in orthorhombic or hexagonal form [9].
The lanthanide phosphates, depending on the ionic radius, crystallize in hexagonal, isostructural with the mineral rabdophane (La � Tb), tetragonal (Ho � Lu and Y), isostructural with the xenotime (zircon - type) structure, while dysprosium phosphate can be in orthorhombic or hexagonal form [9].
Online since: April 2015
Authors: David Manas, Martin Bednarik, Michal Stanek, Jan Navratil, Miroslav Manas, Ales Mizera
There have been several studies investigating why there is such a boost in the spread of this technology and it has been found out that there are three main responses to the irradiation regarding to the chemical structure of an irradiated material – crosslinking, degradation and no response, i.e. resistivity [1-7].
Pikaev, Applied Radiation Chemistry, Wiley-Interscience, New York 1993
Pikaev, Applied Radiation Chemistry, Wiley-Interscience, New York 1993
Online since: August 2013
Authors: Duo Zhang, Gen Zong Song
As shown in Table 3, this is because the ordering degree of atoms increases after annealing and the martensite structure has been changed.
Acknowledgements This paper was financially funded by the Liaoning Natural Science Foundation (201102060) and also receives careful and patient guidance and assistance from Qiyang, a professor at the research institute of material physics and chemistry of Northeastern University.
Acknowledgements This paper was financially funded by the Liaoning Natural Science Foundation (201102060) and also receives careful and patient guidance and assistance from Qiyang, a professor at the research institute of material physics and chemistry of Northeastern University.
Online since: September 2013
Authors: He Ping Yan, Gui Ping Ouyang
Their structures were characterized by IR, 1H NMR, 13C NMR, MS and elemental analysis.
Chemical structure of compounds PD153035, Gefitinib, Erlotinib, Lapatinib, ZD6474 and CUDC-101 Figure 2.
There structures were determined by IR, 1H NMR, 13C NMR, MS and elemental analysis.
Their structures were characterized by IR, 1H NMR, 13C NMR, MS and elemental analysis.
Ouyang.Chinese Journal of Organic Chemistry, 2011, 31(6):901-907.
Chemical structure of compounds PD153035, Gefitinib, Erlotinib, Lapatinib, ZD6474 and CUDC-101 Figure 2.
There structures were determined by IR, 1H NMR, 13C NMR, MS and elemental analysis.
Their structures were characterized by IR, 1H NMR, 13C NMR, MS and elemental analysis.
Ouyang.Chinese Journal of Organic Chemistry, 2011, 31(6):901-907.