Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (61/61 displayed)

  • 2021Evaluation of Physicochemical, Spectral and Thermal Properties of Energy of Consciousness Healing Treated Iron Sulphatecitations
  • 2019Evaluation of Physicochemical and Thermal Properties of the Consciousness Energy Healing Treated Telluriumcitations
  • 2019Evaluation of the physicochemical, thermal and behavioural properties of consciousness energy healing treated iron (II) sulphatecitations
  • 2019Characterization of the biofield energy treated aluminium using PSA, PXRD, and TGA/DTG analytical techniquescitations
  • 2018Evaluation of the Physicochemical and Thermal Properties of Antimony: Influence of the Energy of Consciousness Healing Treatmentcitations
  • 2018Assessment of the Influence of Biofield Energy Treatment on the Physicochemical and Thermal Properties of Lead Using PXRD, PSA, and DSCcitations
  • 2018Evaluation of Biofield Treatment on Physical and Structural Properties of Bronze Powdercitations
  • 2018Evaluation of the Physicochemical and Thermal Properties of Consciousness Energy Healing Treated Lead Using PXRD, PSA, and DSC Analysis1citations
  • 2018Evaluation of the Physicochemical and Thermal Properties of Chromium Trioxide (CrO3): Impact of Consciousness Energy Healing Treatment1citations
  • 2018Spectroscopic and Calorimetric Evaluation of the Consciousness Energy Healing Treated Leadcitations
  • 2016Characterization of Physical, Thermal and Spectroscopic Properties of Biofield Treated Ortho-Toluic Acidcitations
  • 2015Physicochemical Characterization of Biofield Energy Treated Hi VegTM Acid Hydrolysatecitations
  • 2015Physicochemical and Spectroscopic Characterization of p-Chlorobenzaldehyde: An Impact of Biofield Energy Treatmentcitations
  • 2015Physical, Thermal and Spectroscopic Studies of Biofield Treated p-Chlorobenzonitrile1citations
  • 2015Effect of Biofield Treatment on Structural and Morphological Properties of Silicon Carbidecitations
  • 2015Potential Impact of Biofield Energy Treatment on the Atomic, Physical And Thermal Properties Indium Powdercitations
  • 2015Characterization of Physicochemical and Spectroscopic Properties of Biofield Energy Treated Bio Peptonecitations
  • 2015Thermal and physical properties of biofield treated bile salt and proteose peptone5citations
  • 2015Impact of Biofield Treatment on Atomic and Structural Characteristics of Barium Titanate Powder25citations
  • 2015Physicochemical and Spectroscopic Characterization of Yeast Extract Powder After the Biofield Energy Treatment2citations
  • 2015Physical, Thermal and Spectroscopic Characterization of Biofield Treated p-Chloro-m-cresol4citations
  • 2015Characterization of Physical and Structural Properties of Brass Powder After Biofield Treatmentcitations
  • 2015Characterization of Physical and Structural Properties of Brass Powder After Biofield Treatment7citations
  • 2015Characterization of Physical, Thermal and Structural Properties of Chromium (VI) Oxide Powder: Impact of Biofield Treatment21citations
  • 2015Effect of Biofield Treatment on Physical, Thermal, and Spectral Properties of SFRE 199-1 Mammalian Cell Culture Mediumcitations
  • 2015Experimental Investigation on Physical, Thermal and Spectroscopic Properties of 2-Chlorobenzonitrile: Impact of Biofield Treatment1citations
  • 2015Effect of Biofield Treatment on the Physical and Thermal Characteristics of Aluminium Powders30citations
  • 2015Evaluation of Biofield Treatment on Physical and Structural Properties of Bronze Powdercitations
  • 2015Characterization of Physical, Spectral and Thermal Properties of Biofield Treated 1,2,4-Triazole42citations
  • 2015Characterization of Physical, Thermal and Spectroscopic Properties of Biofield Energy Treated P-Phenylenediamine and p-Toluidine9citations
  • 2015Influence of biofield treatment on physicochemical properties of hydroxyethyl cellulose and hydroxypropyl cellulose22citations
  • 2015Evaluation of Physical, Thermal and Spectral Parameters of Biofield Energy Treated Methylsulfonylmethane3citations
  • 2015Physical, Thermal, and Spectroscopic Characterization of Biofield Energy Treated Methyl-2-Naphthyl Ether3citations
  • 2015Physicochemical and Spectroscopic Properties of Biofield Energy Treated Protosecitations
  • 2015Characterization of Thermal and Physical properties of Biofield Treated Acrylamide and 2-Chloroacetamide1citations
  • 2015The Potential Impact of Biofield Treatment on Physical, Structural and Mechanical Properties of Stainless Steel Powder1citations
  • 2015Influence of Biofield Treatment on Physical, Structural and Spectral Properties of Boron Nitride11citations
  • 2015Bio-field treatment: An effective strategy to improve the quality of beef extract and meat infusion powder8citations
  • 2015Characterization of Physical, Spectroscopic and Thermal Properties of Biofield Treated Biphenyl8citations
  • 2015Influence of Biofield Treatment on Physical and Structural Characteristics of Barium Oxide and Zinc Sulfide20citations
  • 2015Structural and physical properties of biofield treated thymol and menthol36citations
  • 2015Characterization of Physical, Thermal and Spectral Properties of Biofield Treated o-Aminophenol7citations
  • 2015Physicochemical and Spectroscopic Characterization of Biofield Energy Treated p-Anisidine2citations
  • 2015Physical, Thermal, and Spectroscopic Characterization of Biofield Energy Treated Murashige and Skoog Plant Cell Culture Media3citations
  • 2015Physicochemical and Spectral Characterization of Biofield Energy Treated 4-Methylbenzoic Acid2citations
  • 2015Physicochemical Characterization of Biofield Energy Treated Calcium Carbonate Powder12citations
  • 2015Physical, Thermal and Spectroscopic Studies on Biofield Treated p-Dichlorobenzene2citations
  • 2015Biofield Treatment: An Effective Strategy for Modulating the Physical and Thermal Properties of O-Nitrophenol, M-Nitrophenol and P-Tertiary Butyl Phenolcitations
  • 2015Impact of Biofield Treatment on Chemical and Thermal Properties of Cellulose and Cellulose Acetate9citations
  • 2015Physicochemical and Atomic Characterization of Silver Powder after Biofield Treatment1citations
  • 2015Characterization of Physicochemical and Thermal Properties of Chitosan And Sodium Alginate after Biofield Treatment83citations
  • 2015Physical, Thermal and Spectroscopic Characterization of m-Toluic Acid: an Impact of Biofield Treatment1citations
  • 2015Effect of biofield treatment on structural and morphological properties of silicon carbide3citations
  • 2015Physical, Thermal and Spectral Properties of Biofield Energy Treated 2,4-Dihydroxybenzophenonecitations
  • 2015Characterization of Physicochemical and Thermal Properties of Biofield Treated Ethyl Cellulose and Methyl Cellulosecitations
  • 2015Physical, Atomic and Thermal Properties of Biofield Treated Lithium Powder5citations
  • 2015Physical and Structural Characterization of Biofield Energy Treated Carbazole3citations
  • 2015Characterization of Physical and Structural Properties of Aluminium Carbide Powder: Impact of Biofield Treatment18citations
  • 2015Physicochemical Evaluation of Biofield Treated Peptone And Malmgren Modified Terrestrial Orchid Medium4citations
  • 2013Effect of Bio Field Treatment on the Physical and Thermal Characteristics of Vanadium Pentoxide Powders31citations
  • 2013Effect of Bio Field Treatment on the Physical and Thermal Characteristics of Silicon, Tin and Lead Powders43citations

Places of action

Chart of shared publication
Jana, Snehasis
49 / 51 shared
Nayak, Gopal
46 / 46 shared
Branton, Alice
41 / 46 shared
Trivedi, Dahryn
41 / 44 shared
Latiyal, Omprakash
11 / 11 shared
Tallapragada, Rama Mohan
21 / 21 shared
Patil, Shrikant
11 / 12 shared
Singh, Ragini
9 / 10 shared
Bairwa, Khemraj
9 / 9 shared
Mishra, Rakesh K.
3 / 3 shared
Rm, Tallapragada
4 / 5 shared
Nayak, G.
5 / 9 shared
Latiyal, O.
5 / 6 shared
Patil, S.
5 / 14 shared
Jana, S.
5 / 12 shared
Tallapragada, Rama Mohan R.
1 / 1 shared
Mishra, Rakesh Kumar
8 / 8 shared
Mishra, Rakesh
2 / 6 shared
Snehasis, J.
2 / 2 shared
Shrikant, P.
2 / 2 shared
Km, Rakesh
1 / 1 shared
Mt, Rama
1 / 1 shared
Gopal, N.
1 / 1 shared
Rakesh, M.
1 / 2 shared
Saikia, Gunin
1 / 1 shared
Chart of publication period
2021
2019
2018
2016
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2013

Co-Authors (by relevance)

  • Jana, Snehasis
  • Nayak, Gopal
  • Branton, Alice
  • Trivedi, Dahryn
  • Latiyal, Omprakash
  • Tallapragada, Rama Mohan
  • Patil, Shrikant
  • Singh, Ragini
  • Bairwa, Khemraj
  • Mishra, Rakesh K.
  • Rm, Tallapragada
  • Nayak, G.
  • Latiyal, O.
  • Patil, S.
  • Jana, S.
  • Tallapragada, Rama Mohan R.
  • Mishra, Rakesh Kumar
  • Mishra, Rakesh
  • Snehasis, J.
  • Shrikant, P.
  • Km, Rakesh
  • Mt, Rama
  • Gopal, N.
  • Rakesh, M.
  • Saikia, Gunin
OrganizationsLocationPeople

article

Physicochemical and Spectroscopic Characterization of Biofield Energy Treated p-Anisidine

  • Nayak, Gopal
  • Branton, Alice
  • Trivedi, Mahendra Kumar
  • Trivedi, Dahryn
  • Bairwa, Khemraj
  • Jana, Snehasis
Abstract

International audience ; The p-anisidine is widely used as chemical intermediate in the production of various dyes, pigments, and pharmaceuticals. This study was aimed to evaluate the effect of biofield energy treatment on the physicochemical and spectroscopic properties of p-anisidine. The study was performed after dividing the sample in two groups; one was remained as untreated and another was subjected to Mr. Trivedi’s biofield energy treatment. Afterward, both the control and treated samples of p-anisidine were evaluated using X-ray diffraction (XRD), surface area analyzer, differential scanning calorimetry (DSC), thermogravimetric analysis-derivative thermogravimetry (TGA-DTG), Fourier transform infrared (FT-IR), and ultraviolet-visible (UV-Vis) spectroscopy. The XRD analysis showed the increase in unit cell volume from 683.81 → 690.18 × 10-24 cm3 and crystallite size from 83.84→84.62 nm in the treated sample with respect to the control. The surface area analysis exhibited the significant increase (25.44%) in the surface area of treated sample as compared to control. The DSC thermogram of control p-anisidine showed the latent heat of fusion and melting temperature and 146.78 J/g and 59.41°C, respectively, which were slightly increased to 148.89 J/g and 59.49°C, respectively after biofield treatment. The TGA analysis showed the onset temperature of thermal degradation at 134.68°C in the control sample that was increased to 150.02°C after biofield treatment. The result showed about 11.39% increase in onset temperature of thermal degradation of treated p-anisidine as compared to the control. Moreover, the Tmax (temperature at which maximum thermal degradation occurs) was also increased slightly from 165.99°C (control) to 168.10°C (treated). This indicated the high thermal stability of treated p-anisidine as compared to the control. However, the FT-IR and UV spectroscopic studies did not show any significant changes in the spectral properties of treated p-anisidine with respect to the control.All together, the ...

Topics
  • impedance spectroscopy
  • surface
  • x-ray diffraction
  • thermogravimetry
  • differential scanning calorimetry
  • melting temperature
  • heat of fusion