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quack/src/GF/evGF2.f90

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Fortran
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subroutine evGF2(BSE,TDA,dBSE,dTDA,evDyn,maxSCF,thresh,max_diis,singlet,triplet, &
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linearize,eta,regularize,nBas,nC,nO,nV,nR,nS,ENuc,ERHF,ERI,dipole_int,eHF)
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! Perform eigenvalue self-consistent second-order Green function calculation
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implicit none
include 'parameters.h'
! Input variables
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logical,intent(in) :: BSE
logical,intent(in) :: TDA
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logical,intent(in) :: dBSE
logical,intent(in) :: dTDA
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logical,intent(in) :: evDyn
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integer,intent(in) :: maxSCF
double precision,intent(in) :: thresh
integer,intent(in) :: max_diis
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logical,intent(in) :: singlet
logical,intent(in) :: triplet
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logical,intent(in) :: linearize
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double precision,intent(in) :: eta
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logical,intent(in) :: regularize
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integer,intent(in) :: nBas
integer,intent(in) :: nO
integer,intent(in) :: nC
integer,intent(in) :: nV
integer,intent(in) :: nR
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integer,intent(in) :: nS
double precision,intent(in) :: ENuc
double precision,intent(in) :: ERHF
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double precision,intent(in) :: eHF(nBas)
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double precision,intent(in) :: ERI(nBas,nBas,nBas,nBas)
double precision,intent(in) :: dipole_int(nBas,nBas,ncart)
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! Local variables
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integer :: nSCF
integer :: n_diis
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double precision :: Ec
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double precision :: EcBSE(nspin)
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double precision :: Conv
double precision :: rcond
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double precision,allocatable :: eGF2(:)
double precision,allocatable :: eOld(:)
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double precision,allocatable :: SigC(:)
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double precision,allocatable :: Z(:)
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double precision,allocatable :: error_diis(:,:)
double precision,allocatable :: e_diis(:,:)
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! Hello world
write(*,*)
write(*,*)'************************************************'
write(*,*)'| Second-order Green function calculation |'
write(*,*)'************************************************'
write(*,*)
! Memory allocation
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allocate(SigC(nBas),Z(nBas),eGF2(nBas),eOld(nBas),error_diis(nBas,max_diis),e_diis(nBas,max_diis))
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! Initialization
Conv = 1d0
nSCF = 0
n_diis = 0
e_diis(:,:) = 0d0
error_diis(:,:) = 0d0
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eGF2(:) = eHF(:)
eOld(:) = eHF(:)
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rcond = 0d0
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!------------------------------------------------------------------------
! Main SCF loop
!------------------------------------------------------------------------
do while(Conv > thresh .and. nSCF < maxSCF)
! Frequency-dependent second-order contribution
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if(regularize) then
call regularized_self_energy_GF2_diag(eta,nBas,nC,nO,nV,nR,nS,eHF,eGF2,ERI,SigC,Z)
else
call self_energy_GF2_diag(eta,nBas,nC,nO,nV,nR,nS,eHF,eGF2,ERI,SigC,Z)
end if
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if(linearize) then
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eGF2(:) = eHF(:) + Z(:)*SigC(:)
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else
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eGF2(:) = eHF(:) + SigC(:)
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end if
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Conv = maxval(abs(eGF2 - eOld))
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! Print results
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call MP2(regularize,nBas,nC,nO,nV,nR,ERI,ENuc,EHF,eGF2,Ec)
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call print_evGF2(nBas,nO,nSCF,Conv,eHF,SigC,Z,eGF2,ENuc,ERHF,Ec)
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! DIIS extrapolation
n_diis = min(n_diis+1,max_diis)
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call DIIS_extrapolation(rcond,nBas,nBas,n_diis,error_diis,e_diis,eGF2-eOld,eGF2)
if(abs(rcond) < 1d-15) n_diis = 0
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eOld(:) = eGF2(:)
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! Increment
nSCF = nSCF + 1
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end do
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!------------------------------------------------------------------------
! End main SCF loop
!------------------------------------------------------------------------
! Did it actually converge?
if(nSCF == maxSCF+1) then
write(*,*)
write(*,*)'!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!'
write(*,*)' Convergence failed '
write(*,*)'!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!'
write(*,*)
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stop
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end if
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! Perform BSE2 calculation
if(BSE) then
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call BSE2(TDA,dBSE,dTDA,evDyn,singlet,triplet,eta,nBas,nC,nO,nV,nR,nS,ERI,dipole_int,eHF,eGF2,EcBSE)
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end if
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end subroutine evGF2