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Characterization and Evaluation of Properties of l-Threoninium p-Toluenesulfonate Monohydrate Single Crystal
by
Suminda
, Bidkin, Igor
, Ahlawat, Sonia
, Das, Subhasis
in
Dielectric properties
/ Laser damage
/ Modulus of elasticity
/ Nanoindentation
/ Nonlinear optics
/ Optical properties
/ Optoelectronic devices
/ Photoluminescence
/ Radiation damage
/ Shock waves
/ Single crystals
/ Stability analysis
/ Surface analysis (chemical)
/ Yield point
2023
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Characterization and Evaluation of Properties of l-Threoninium p-Toluenesulfonate Monohydrate Single Crystal
by
Suminda
, Bidkin, Igor
, Ahlawat, Sonia
, Das, Subhasis
in
Dielectric properties
/ Laser damage
/ Modulus of elasticity
/ Nanoindentation
/ Nonlinear optics
/ Optical properties
/ Optoelectronic devices
/ Photoluminescence
/ Radiation damage
/ Shock waves
/ Single crystals
/ Stability analysis
/ Surface analysis (chemical)
/ Yield point
2023
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Do you wish to request the book?
Characterization and Evaluation of Properties of l-Threoninium p-Toluenesulfonate Monohydrate Single Crystal
by
Suminda
, Bidkin, Igor
, Ahlawat, Sonia
, Das, Subhasis
in
Dielectric properties
/ Laser damage
/ Modulus of elasticity
/ Nanoindentation
/ Nonlinear optics
/ Optical properties
/ Optoelectronic devices
/ Photoluminescence
/ Radiation damage
/ Shock waves
/ Single crystals
/ Stability analysis
/ Surface analysis (chemical)
/ Yield point
2023
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Characterization and Evaluation of Properties of l-Threoninium p-Toluenesulfonate Monohydrate Single Crystal
Journal Article
Characterization and Evaluation of Properties of l-Threoninium p-Toluenesulfonate Monohydrate Single Crystal
2023
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Overview
A transparent nonlinear optical (NLO) organic single crystal of l-threoninium p-toluenesulfonate (LTPTM) monohydrate was obtained using the slow evaporation solution growth technique over a span of 5 weeks. It crystallizes in the non-centrosymmetric space group P21, which is the same as that described in the literature. Photoluminescence spectroscopy was used to assess its optical characteristics. Hirshfeld surface analysis of LTPTM and its donor and acceptor sites was carried out using CrystalExplorer software. The mechanical stability of the titled material was assessed by applying shock waves to determine its optical, structural, and morphological properties after shock. In addition, the nanoindentation technique was used to investigate the mechanical stability at the nanoscale, and several characteristics including stiffness, Young’s modulus, and hardness were also calculated. The laser damage threshold determined its capacity to withstand intense laser radiation. The dielectric properties were also analysed. All these studies revealed the potential for application of LTPTM in various NLO and optoelectronic devices.
Publisher
Springer Nature B.V
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