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https://github.com/pfloos/quack
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excitation vectors for ppRPA and ppBSE
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@ -5,7 +5,7 @@
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# CC: maxSCF thresh DIIS n_diis
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64 0.00001 T 5
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# spin: TDA singlet triplet spin_conserved spin_flip
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F T T T T
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T T F T T
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# GF: maxSCF thresh DIIS n_diis lin eta renorm reg
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256 0.00001 T 5 T 0.0 3 F
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# GW: maxSCF thresh DIIS n_diis lin eta COHSEX SOSEX TDA_W G0W GW0 reg
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@ -97,6 +97,8 @@ subroutine Bethe_Salpeter_pp(TDA_W,TDA,singlet,triplet,eta,nBas,nC,nO,nV,nR,nS,E
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call print_excitation('pp-BSE (N+2)',ispin,nVV,Omega1)
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call print_excitation('pp-BSE (N-2)',ispin,nOO,Omega2)
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call print_transition_vectors_pp(.true.,nBas,nC,nO,nV,nR,nOO,nVV,dipole_int,Omega1,X1,Y1,Omega2,X2,Y2)
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deallocate(Omega1,X1,Y1,Omega2,X2,Y2,WB,WC,WD)
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end if
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@ -129,6 +131,8 @@ subroutine Bethe_Salpeter_pp(TDA_W,TDA,singlet,triplet,eta,nBas,nC,nO,nV,nR,nS,E
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call print_excitation('pp-BSE (N+2)',ispin,nVV,Omega1)
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call print_excitation('pp-BSE (N-2)',ispin,nOO,Omega2)
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call print_transition_vectors_pp(.false.,nBas,nC,nO,nV,nR,nOO,nVV,dipole_int,Omega1,X1,Y1,Omega2,X2,Y2)
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deallocate(Omega1,X1,Y1,Omega2,X2,Y2,WB,WC,WD)
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end if
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183
src/LR/print_transition_vectors_pp.f90
Normal file
183
src/LR/print_transition_vectors_pp.f90
Normal file
@ -0,0 +1,183 @@
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subroutine print_transition_vectors_pp(spin_allowed,nBas,nC,nO,nV,nR,nOO,nVV,dipole_int,Omega1,X1,Y1,Omega2,X2,Y2)
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! Print transition vectors for p-p linear response calculation
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implicit none
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include 'parameters.h'
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! Input variables
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logical,intent(in) :: spin_allowed
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integer,intent(in) :: nBas
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integer,intent(in) :: nC
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integer,intent(in) :: nO
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integer,intent(in) :: nV
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integer,intent(in) :: nR
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integer,intent(in) :: nOO
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integer,intent(in) :: nVV
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double precision :: dipole_int(nBas,nBas,ncart)
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double precision,intent(out) :: Omega1(nVV)
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double precision,intent(out) :: X1(nVV,nVV)
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double precision,intent(out) :: Y1(nOO,nVV)
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double precision,intent(out) :: Omega2(nOO)
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double precision,intent(out) :: X2(nVV,nOO)
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double precision,intent(out) :: Y2(nOO,nOO)
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! Local variables
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integer :: a,b,c,d,ab,cd
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integer :: i,j,k,l,ij,kl
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integer :: maxOO
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integer :: maxVV = 10
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double precision :: S2
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double precision,parameter :: thres_vec = 0.1d0
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double precision,allocatable :: osOO(:)
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double precision,allocatable :: osVV(:)
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! Memory allocation
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maxOO = min(nOO,maxOO)
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maxVV = min(nVV,maxVV)
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allocate(osOO(maxOO),osVV(maxVV))
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! Compute oscillator strengths
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osOO(:) = 0d0
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osVV(:) = 0d0
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! if(spin_allowed) call oscillator_strength(nBas,nC,nO,nV,nR,nS,maxS,dipole_int,Omega,XpY,XmY,os)
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!-----------------------------------------------!
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! Print details about excitations for pp sector !
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!-----------------------------------------------!
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do ab=1,maxVV
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! <S**2> values
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if(spin_allowed) then
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S2 = 0d0
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else
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S2 = 2d0
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end if
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print*,'-------------------------------------------------------------'
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write(*,'(A20,I3,A2,F10.6,A3,A6,F6.4,A11,F6.4)') &
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' p-p excitation n. ',ab,': ',Omega1(ab)*HaToeV,' eV',' f = ',osVV(ab),' <S**2> = ',S2
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print*,'-------------------------------------------------------------'
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if(spin_allowed) then
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cd = 0
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do c=nO+1,nBas-nR
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do d=c,nBas-nR
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cd = cd + 1
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if(abs(X1(cd,ab)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') c,' -- ',d,' = ',X1(cd,ab)/sqrt(2d0)
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end do
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end do
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kl = 0
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do k=nC+1,nO
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do l=k,nO
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kl = kl + 1
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if(abs(Y1(kl,ab)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') k,' -- ',l,' = ',Y1(kl,ab)/sqrt(2d0)
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end do
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end do
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else
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cd = 0
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do c=nO+1,nBas-nR
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do d=c+1,nBas-nR
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cd = cd + 1
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if(abs(X1(cd,ab)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') c,' -- ',d,' = ',X1(cd,ab)/sqrt(2d0)
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end do
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end do
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kl = 0
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do k=nC+1,nO
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do l=k+1,nO
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kl = kl + 1
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if(abs(Y1(kl,ab)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') k,' -- ',l,' = ',Y1(kl,ab)/sqrt(2d0)
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end do
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end do
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end if
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write(*,*)
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end do
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! Thomas-Reiche-Kuhn sum rule
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write(*,'(A50,F10.6)') 'Thomas-Reiche-Kuhn sum rule for p-p sector = ',sum(osVV(:))
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write(*,*)
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!-----------------------------------------------!
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! Print details about excitations for hh sector !
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!-----------------------------------------------!
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do ij=1,maxOO
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! <S**2> values
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if(spin_allowed) then
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S2 = 0d0
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else
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S2 = 2d0
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end if
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print*,'-------------------------------------------------------------'
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write(*,'(A20,I3,A2,F10.6,A3,A6,F6.4,A11,F6.4)') &
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' h-h excitation n. ',ij,': ',Omega2(ij)*HaToeV,' eV',' f = ',osOO(ij),' <S**2> = ',S2
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print*,'-------------------------------------------------------------'
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if(spin_allowed) then
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cd = 0
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do c=nO+1,nBas-nR
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do d=c,nBas-nR
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cd = cd + 1
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if(abs(X2(cd,ij)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') c,' -- ',d,' = ',X2(cd,ij)/sqrt(2d0)
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end do
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end do
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kl = 0
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do k=nC+1,nO
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do l=k,nO
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kl = kl + 1
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if(abs(Y2(kl,ij)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') k,' -- ',l,' = ',Y2(kl,ij)/sqrt(2d0)
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end do
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end do
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else
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cd = 0
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do c=nO+1,nBas-nR
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do d=c+1,nBas-nR
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cd = cd + 1
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if(abs(X2(cd,ij)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') c,' -- ',d,' = ',X2(cd,ij)/sqrt(2d0)
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end do
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end do
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kl = 0
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do k=nC+1,nO
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do l=k+1,nO
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kl = kl + 1
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if(abs(Y2(kl,ij)) > thres_vec) write(*,'(I3,A4,I3,A3,F10.6)') k,' -- ',l,' = ',Y2(kl,ij)/sqrt(2d0)
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end do
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end do
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end if
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write(*,*)
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end do
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! Thomas-Reiche-Kuhn sum rule
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write(*,'(A50,F10.6)') 'Thomas-Reiche-Kuhn sum rule for h-h sector = ',sum(osOO(:))
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write(*,*)
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end subroutine print_transition_vectors_pp
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@ -845,7 +845,7 @@ program QuAcK
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else
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call ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI_MO,eHF)
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call ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI_MO,dipole_int_MO,eHF)
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end if
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@ -1,4 +1,4 @@
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subroutine ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI,e)
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subroutine ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI,dipole_int,e)
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! Perform pp-RPA calculation
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@ -20,19 +20,20 @@ subroutine ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI,e)
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double precision,intent(in) :: ERHF
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double precision,intent(in) :: e(nBas)
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double precision,intent(in) :: ERI(nBas,nBas,nBas,nBas)
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double precision,intent(in) :: dipole_int(nBas,nBas,ncart)
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! Local variables
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integer :: ispin
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integer :: nS
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integer :: nOOs,nOOt
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integer :: nVVs,nVVt
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double precision,allocatable :: Omega1s(:),Omega1t(:)
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double precision,allocatable :: X1s(:,:),X1t(:,:)
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double precision,allocatable :: Y1s(:,:),Y1t(:,:)
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double precision,allocatable :: Omega2s(:),Omega2t(:)
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double precision,allocatable :: X2s(:,:),X2t(:,:)
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double precision,allocatable :: Y2s(:,:),Y2t(:,:)
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integer :: nOO
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integer :: nVV
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double precision,allocatable :: Omega1(:)
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double precision,allocatable :: X1(:,:)
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double precision,allocatable :: Y1(:,:)
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double precision,allocatable :: Omega2(:)
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double precision,allocatable :: X2(:,:)
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double precision,allocatable :: Y2(:,:)
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double precision :: Ec_ppRPA(nspin)
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double precision :: EcAC(nspin)
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@ -54,31 +55,26 @@ subroutine ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI,e)
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nS = nO*nV
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nOOs = nO*(nO+1)/2
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nVVs = nV*(nV+1)/2
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nOOt = nO*(nO-1)/2
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nVVt = nV*(nV-1)/2
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! Memory allocation
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allocate(Omega1s(nVVs),X1s(nVVs,nVVs),Y1s(nOOs,nVVs), &
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Omega2s(nOOs),X2s(nVVs,nOOs),Y2s(nOOs,nOOs))
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allocate(Omega1t(nVVt),X1t(nVVt,nVVt),Y1t(nOOt,nVVt), &
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Omega2t(nOOt),X2t(nVVt,nOOt),Y2t(nOOt,nOOt))
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! Singlet manifold
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if(singlet) then
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ispin = 1
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call linear_response_pp(ispin,TDA,nBas,nC,nO,nV,nR,nOOs,nVVs,1d0,e,ERI, &
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Omega1s,X1s,Y1s,Omega2s,X2s,Y2s,Ec_ppRPA(ispin))
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nOO = nO*(nO+1)/2
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nVV = nV*(nV+1)/2
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call print_excitation('pp-RPA (N+2)',ispin,nVVs,Omega1s)
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call print_excitation('pp-RPA (N-2)',ispin,nOOs,Omega2s)
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allocate(Omega1(nVV),X1(nVV,nVV),Y1(nOO,nVV),Omega2(nOO),X2(nVV,nOO),Y2(nOO,nOO))
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call linear_response_pp(ispin,TDA,nBas,nC,nO,nV,nR,nOO,nVV,1d0,e,ERI, &
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Omega1,X1,Y1,Omega2,X2,Y2,Ec_ppRPA(ispin))
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call print_excitation('pp-RPA (N+2)',ispin,nVV,Omega1)
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call print_excitation('pp-RPA (N-2)',ispin,nOO,Omega2)
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call print_transition_vectors_pp(.true.,nBas,nC,nO,nV,nR,nOO,nVV,dipole_int,Omega1,X1,Y1,Omega2,X2,Y2)
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deallocate(Omega1,X1,Y1,Omega2,X2,Y2)
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endif
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@ -88,11 +84,20 @@ subroutine ppRPA(TDA,doACFDT,singlet,triplet,nBas,nC,nO,nV,nR,ENuc,ERHF,ERI,e)
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ispin = 2
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call linear_response_pp(ispin,TDA,nBas,nC,nO,nV,nR,nOOt,nVVt,1d0,e,ERI, &
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Omega1t,X1t,Y1t,Omega2t,X2t,Y2t,Ec_ppRPA(ispin))
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nOO = nO*(nO-1)/2
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nVV = nV*(nV-1)/2
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call print_excitation('pp-RPA (N+2)',ispin,nVVt,Omega1t)
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call print_excitation('pp-RPA (N-2)',ispin,nOOt,Omega2t)
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allocate(Omega1(nVV),X1(nVV,nVV),Y1(nOO,nVV),Omega2(nOO),X2(nVV,nOO),Y2(nOO,nOO))
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call linear_response_pp(ispin,TDA,nBas,nC,nO,nV,nR,nOO,nVV,1d0,e,ERI, &
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Omega1,X1,Y1,Omega2,X2,Y2,Ec_ppRPA(ispin))
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call print_excitation('pp-RPA (N+2)',ispin,nVV,Omega1)
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call print_excitation('pp-RPA (N-2)',ispin,nOO,Omega2)
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call print_transition_vectors_pp(.false.,nBas,nC,nO,nV,nR,nOO,nVV,dipole_int,Omega1,X1,Y1,Omega2,X2,Y2)
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deallocate(Omega1,X1,Y1,Omega2,X2,Y2)
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endif
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