High refractive index and dielectric properties of BaTiO3 nanocube/polymer composite films

2020 ◽  
Vol 22 (8) ◽  
Author(s):  
Ken-ichi Mimura ◽  
Kazumi Kato
2007 ◽  
Vol 91 (2) ◽  
pp. 022912 ◽  
Author(s):  
Qian Chen ◽  
Piyi Du ◽  
Lu Jin ◽  
Wenjian Weng ◽  
Gaorong Han

2011 ◽  
Vol 66 (2) ◽  
pp. 169-173
Author(s):  
L. V. Platonova ◽  
P. S. Bednyakov ◽  
S. A. Taraskin ◽  
A. Yu. Danilov ◽  
P. M. Pakhomov

2013 ◽  
Vol 209 ◽  
pp. 14-17
Author(s):  
Basavaraja Sannakki ◽  
Anita Gandhe ◽  
V.H. Doddamani

Abstract. The PMMA with Fe2O3+ Al2O3 films at different weight percent have been used for measurement of dielectric properties such as dielectric constant, dielectric loss and a. c. conductivity as a function of frequency over the range 50 Hz – 5 MHz at room temperature. The dielectric constant and the dielectric loss (tan δ) of the polymer composite films decreases exponentially at lower frequencies over the range 100 Hz-1 kHz, where as above 1 kHz the values of dielectric constant remains same. But, it has been observed that the value of dielectric constant of PMMA composite films with Fe2O3+ Al2O3 increases as weight percent of Fe2O3+ Al2O3 increases. The a c conductivity of the polymer composite films remains constant over the frequency range 50 Hz to 300 K Hz and afterwards it increases exponentially. Further, PMMA with Fe2O3+ Al2O3 have been characterized using X-Ray diffractometer for the crystallinity. The morphological studies have been made using the FESEM.


2017 ◽  
Vol 694 ◽  
pp. 884-891 ◽  
Author(s):  
K.N. Shilpa ◽  
Kundachira Subramani Nithin ◽  
S. Sachhidananda ◽  
B.S. Madhukar ◽  
Siddaramaiah

Author(s):  
B. R. Dantal ◽  
A. Saigal ◽  
M. A. Zimmerman

During the past decade, the preparation of inorganic/organic hybrid materials with high refractive index has attracted considerable attention. In particular, TiO2 (Titanium dioxide or Titania), as inorganic domains, have been incorporated into a polymer matrix to produce high refractive index hybrid materials [1–3]. Polarization of injection molded liquid crystal polymer/Titania composite parts have been investigated in the broad band millimeter wave frequency range. The measurements have been performed by using two different spectroscopy techniques. First, free space quasi optical millimeter wave spectrometer, equipped with a high power source coherent radiation tunable in the 40–90 GHz frequency range is used. Second, low power dispersive Fourier transform spectrometer has been used for higher frequencies in the range of 100–600 GHz. Dielectric properties of liquid crystal polymer/Titania composites have been determined in the broad band millimeter wave frequency range. A correlation between dielectric properties and dispersed Titania weight percent has been observed using the two spectroscopy techniques. It is found that the absorption coefficient and loss tangent is a strong function of the output power of the sources of the incident radiation. On the other hand, refractive index and real permittivity values measured from both spectroscopy techniques are similar. In addition, it has been found that transmittance level and absorption losses depend on the orientation of the samples with respect to the orientation of electric and magnetic fields in the incident electro-magnetic wave. Finally, the polarization of the parts varies with the direction of flow of the molten plastic into the cavity.


2021 ◽  
Author(s):  
Andreea Irina Barzic ◽  
Marius Soroceanu ◽  
Razvan Rotaru ◽  
Florica Doroftei ◽  
Mihai Asandulesa ◽  
...  

Abstract High refractive index and transparent materials are useful in various technical domains, ranging from energy sector to microelectronics. This work deals with polymer composites prepared by embedding small amounts of barium titanate in hydroxypropyl cellulose matrix. Optical transparency of the composite films varies in agreement with polymer doping level. Light dispersion in the prepared composites allowed evaluation of specific parameters, which are related to the sample structural order and possible optical transitions. Conductivity of the composites is increased due to ceramic particle addition in the polymer. Dielectric studies reveal that the prepared materials are suitable for electric energy storage applications.


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