Pressure dependence of $^3^5Cl$ Nuclear Quadrupole Resonances (N.Q.R.) in 2,5-, 2,6- and 3,5-dichlorophenols (DCP) has been studied up to a pressure of about 6·5 kbar at room temperature. While the pressure dependence of the two resonance lines in 2,6-DCP is essentially similar, the lower frequency line in 2,5-DCP is almost pressure independent and the higher frequency line shows a linear variation with pressure upto about 3·5 kbar but shows a negative pressure coefficient beyond this pressure. The two lines in 3,5-DCP have a non-linear pressure dependence with the curvature changing smoothly with pressure. The pressure coefficient for both lines becomes negative beyond a pressure of 5 kbar. The pressure dependence of the N.Q.R. frequencies...
NQR frequencies in 3,4-dichlorophenol are investigated in the temperature range 77 K to room tempera...
The temperature and pressure dependence of 35Cl NQR frequency and spin lattice relaxation time (T1) ...
Author Institution: Department of Chemistry, Brandeis UniversityOptically detected magnetic resonanc...
Pressure dependence of the 35Cl Nuclear Quadrupole Resonances (N.Q.R.) in 2,5-, 2,6- and 3,5-dichlor...
The pressure dependences of 35Cl nuclear quadrupole resonance (NQR) frequency, temperature and press...
The pressure dependences of Cl-35 nuclear quadrupole resonance (NQR) frequency, temperature and pres...
The pressure dependence of the chlorine NQR frequency in NaClo<sub>3</sub> has been investigated up ...
The $^{35}Cl$ nuclear quadrupole resonance (NQR) frequencies ($\nu_Q$) in caesium and sodium chlorat...
Pressure and temperature dependence of $^3^5Cl$ nuclear quadrupole resonance (NQR) has been investig...
The Cl-35 NQR frequency (nu(Q)) and spin lattice relaxation time (T-1) in 2,6-dichloropyridine, 2 am...
The temperature and pressure dependences of $^{35}Cl$ nuclear quadrupole resonance (NQR) frequency a...
The 35Cl NQR frequency (vQ) and spin lattice relaxation time (Tl) in 2,6-dichloropyridine, 2 amino 3...
The 35Cl Nuclear Quadrupole Resonance (NQR) frequency (νQ) and spin lattice relaxation time (T1) in...
Pressure and temperature dependence of 35Cl nuclear quadrupole resonance (NQR) has been investigated...
The temperature and pressure dependences of 35Cl nuclear quadrupole resonance (NQR) frequency and sp...
NQR frequencies in 3,4-dichlorophenol are investigated in the temperature range 77 K to room tempera...
The temperature and pressure dependence of 35Cl NQR frequency and spin lattice relaxation time (T1) ...
Author Institution: Department of Chemistry, Brandeis UniversityOptically detected magnetic resonanc...
Pressure dependence of the 35Cl Nuclear Quadrupole Resonances (N.Q.R.) in 2,5-, 2,6- and 3,5-dichlor...
The pressure dependences of 35Cl nuclear quadrupole resonance (NQR) frequency, temperature and press...
The pressure dependences of Cl-35 nuclear quadrupole resonance (NQR) frequency, temperature and pres...
The pressure dependence of the chlorine NQR frequency in NaClo<sub>3</sub> has been investigated up ...
The $^{35}Cl$ nuclear quadrupole resonance (NQR) frequencies ($\nu_Q$) in caesium and sodium chlorat...
Pressure and temperature dependence of $^3^5Cl$ nuclear quadrupole resonance (NQR) has been investig...
The Cl-35 NQR frequency (nu(Q)) and spin lattice relaxation time (T-1) in 2,6-dichloropyridine, 2 am...
The temperature and pressure dependences of $^{35}Cl$ nuclear quadrupole resonance (NQR) frequency a...
The 35Cl NQR frequency (vQ) and spin lattice relaxation time (Tl) in 2,6-dichloropyridine, 2 amino 3...
The 35Cl Nuclear Quadrupole Resonance (NQR) frequency (νQ) and spin lattice relaxation time (T1) in...
Pressure and temperature dependence of 35Cl nuclear quadrupole resonance (NQR) has been investigated...
The temperature and pressure dependences of 35Cl nuclear quadrupole resonance (NQR) frequency and sp...
NQR frequencies in 3,4-dichlorophenol are investigated in the temperature range 77 K to room tempera...
The temperature and pressure dependence of 35Cl NQR frequency and spin lattice relaxation time (T1) ...
Author Institution: Department of Chemistry, Brandeis UniversityOptically detected magnetic resonanc...