Sort by:
Publication Type:
Open access:
Publication Date:
Periodicals:
Search results
Online since: January 2004
Authors: P.A. Sterne, Amy L.R. Bug, Melaku Muluneh, Jillian Waldman
While this model might be embellished to include polarization, Si and Al, counterions
and adsorbates; it provides a starting point from which to consider various cage structures.
Jean in Positron and Positronium Chemistry D.M.
Jean in Positron and Positronium Chemistry D.M.
Online since: July 2019
Authors: Rachmawati Rachmawati, Wendi Falahuddin, Rukman Hertadi
Biosynthesis and Characterization of Bioplastic Polyhydroxybutyrate from Halophilic Bacterium Halomonas elongata BK-AB8
Rachmawati Rachmawati1,a, Wendi Falahuddin2,b and Rukman Hertadi2,c*
1Inorganic and Physical Chemistry Division, Faculty of Mathematics and Natural Sciences, Institut Teknologi Bandung, Jl.
This correlates with the structure of glucose as a monosaccharide, which is simpler compared to disaccharides such as sucrose and maltose.
This correlates with the structure of glucose as a monosaccharide, which is simpler compared to disaccharides such as sucrose and maltose.
Online since: March 2013
Authors: Sheng Lu, Dai Li Yang, Ali Lu, Shi Yu Xiao
The evolution of recrystallized grain structure in the weld nugget zone is due to the severe plastic deformation and frictional heat introduced by the rotating tool pin and its shoulder in the weld nugget zone during welding [13–15].The higher temperature and severe plastic deformations result in remarkable smaller grains compared to the base metal.
[18] Caizhi Zhou, Xinqi Yang , Guohong Luan, Investigation of microstructures and fatigue properties of friction stir welded Al–Mg alloy, Materials Chemistry and Physics 98 (2006) 285–290
[18] Caizhi Zhou, Xinqi Yang , Guohong Luan, Investigation of microstructures and fatigue properties of friction stir welded Al–Mg alloy, Materials Chemistry and Physics 98 (2006) 285–290
Online since: September 2011
Authors: Shrividya Ravi, Alan B. Kaiser, Christopher W. Bumby
Such processes enable access to macroscopic thin films which are structured
at the nanoscale and offer interesting opportunities for the manufacturing of large area devices.
Gao et al., The Journal of Physical Chemistry C 112, 19324 (2008)
Gao et al., The Journal of Physical Chemistry C 112, 19324 (2008)
Online since: February 2014
Authors: Aroonsri Priprem, Nutjaree Pratheepawanit Johns, Jeffrey Roy Johns, Vassana Netweera, Pramote Mahakunakorn
Cholesterol is used as the additives as its molecular size fits into the bilayer structure of the niosomes, thus able to stabilize through hydrogen bonding or decrease the hydrodynamic diameter and enhance entrapment efficiency [3].
Florence, Non-ionic surfactant vesicles (Niosomes): physical and pharmaceutical chemistry, Adv.
Florence, Non-ionic surfactant vesicles (Niosomes): physical and pharmaceutical chemistry, Adv.
Online since: April 2013
Authors: Eden May Dela Pena, Michael Leo Dela Cruz, Khryslyn Araño, Leslie Joy L. Diaz
., "A Combined Study by XRD, FTIR, TG and HRTEM on the Structure of Delaminated Fe-intercalated/pillared Clay," Journal of Colloid and Interface Science, vol. 324, pp. 142-149, May 2008
Mollouk, "Delivery Vehicles for Zerovalent Metal Nanoparticles in Soil and Groundwater," Chemistry of Materials, vol. 16, pp. 2187-2193, 2004
Mollouk, "Delivery Vehicles for Zerovalent Metal Nanoparticles in Soil and Groundwater," Chemistry of Materials, vol. 16, pp. 2187-2193, 2004
Online since: January 2013
Authors: Qiu Xiang Yao, Mei Li Du, Ming Sun
Improving anti-aging coatings by coupling of organic and inorganic ultraviolet absorbers
Qiuxiang Yao1, a, Meili Du1,b and Ming Sun2,c
1 College of Chemistry & Chemical Engineering, Xi’an University of Science and Technology, Xi’an 710054 China
2 School of Chemical Engineering, Northwest University, Xi’an 710069, China
aqiuxiangy@yahoo.com.cn, bduml@xust.edu.cn, csunming1982@126.com
Keywords: nanosized rutile; organic ultraviolet absorbers; anti-aging property; coatings
Abstract.
The chemical structures of two commercial UV absorbers based on benzophenone (UV-531) and benzotriazole (UV-326) are shown below. 2-hydroxy-4-n-octyloxybenzophenone (UV-531) 2-(3-tert-butyl-2-hydroxy-5-methylphenyl)-5-chloro-2H-benzotriazole (UV-326) Currently, more frequently inorganic UV absorbers, e.g.
The chemical structures of two commercial UV absorbers based on benzophenone (UV-531) and benzotriazole (UV-326) are shown below. 2-hydroxy-4-n-octyloxybenzophenone (UV-531) 2-(3-tert-butyl-2-hydroxy-5-methylphenyl)-5-chloro-2H-benzotriazole (UV-326) Currently, more frequently inorganic UV absorbers, e.g.