66 real(real64),
allocatable,
public :: vpx(:)
67 real(real64),
public :: ex
68 type(photon_mode_t) :: pt
69 real(real64) :: pxlda_kappa
72 integer :: energy_method = 0
73 logical :: lcorrelations = .false.
74 logical :: llamb_re_mass = .false.
75 logical :: llamb_freespace =.false.
76 real(real64) :: lamb_omega
78 logical,
public :: lpfmf = .false.
79 real(real64),
allocatable,
public :: mf_vector_potential(:)
80 real(real64),
allocatable :: jp_proj_eo(:,:)
96 integer,
private,
parameter :: &
97 XC_PHOTONS_NONE = 0, &
106 subroutine xc_photons_init(xc_photons, namespace, xc_photon, space, gr, st)
107 class(xc_photons_t),
intent(out) :: xc_photons
108 type(namespace_t),
intent(in) :: namespace
109 integer,
intent(in) :: xc_photon
110 class(space_t),
intent(in) :: space
111 type(grid_t),
intent(in) :: gr
112 type(states_elec_t),
intent(in) :: st
116 xc_photons%lpfmf = .false.
123 select case(xc_photon)
124 case(option__xcphotonfunctional__photon_x_lda)
126 xc_photons%lcorrelations = .false.
127 case(option__xcphotonfunctional__photon_xc_lda)
129 xc_photons%lcorrelations = .
true.
130 case(option__xcphotonfunctional__photon_x_wfn)
132 xc_photons%lcorrelations = .false.
133 case(option__xcphotonfunctional__photon_xc_wfn)
135 xc_photons%lcorrelations = .
true.
137 xc_photons%method = xc_photons_none
185 call parse_variable(namespace,
'PhotonXCEnergyMethod', 1, xc_photons%energy_method)
187 if( xc_photons%method ==
xc_photons_wfs .and. xc_photons%energy_method == option__photonxcenergymethod__lda )
then
188 message(1) =
"Calculating the electron-photon energy from the LDA expression"
189 message(2) =
"is not implemented for wave function based electron-photon functionals"
194 if (xc_photons%lcorrelations)
then
207 message(1) =
"Defining PhotonXCEtaC is required for photon functionals containing correlation."
213 xc_photons%eta_c =
m_one
218 safe_allocate(xc_photons%vpx(1:gr%np_part))
230 call parse_variable(namespace,
'PhotonXCLambShift', .false., xc_photons%llamb_freespace)
233 if (xc_photons%llamb_freespace)
then
253 call parse_variable(namespace,
'PhotonXCLambShiftRenormalizeMass', .false., xc_photons%llamb_re_mass)
272 safe_deallocate_a(this%vpx)
274 if (
allocated(this%mf_vector_potential))
then
275 safe_deallocate_a(this%mf_vector_potential)
277 if (
allocated(this%jp_proj_eo))
then
278 safe_deallocate_a(this%jp_proj_eo)
290 subroutine xc_photons_v_ks(xc_photons, namespace, total_density, gr, space, psolver, ep, st)
293 real(real64),
pointer,
contiguous,
intent(in) :: total_density(:)
294 class(
grid_t),
intent(in) :: gr
295 type(
space_t),
intent(in) :: space
297 type(
epot_t),
intent(in) :: ep
304 xc_photons%lpfmf = xc_photons%method > 0
309 if ( .not.
allocated(xc_photons%mf_vector_potential) )
then
310 safe_allocate(xc_photons%mf_vector_potential(1:space%dim))
311 xc_photons%mf_vector_potential =
m_zero
313 if ( .not.
allocated(xc_photons%jp_proj_eo))
then
314 safe_allocate(xc_photons%jp_proj_eo(1:xc_photons%pt%nmodes,1:2))
315 xc_photons%jp_proj_eo =
m_zero
319 select case(xc_photons%method)
324 case(xc_photons_none)
332 if (.not. xc_photons%llamb_freespace)
then
334 do ia = 1, xc_photons%pt%nmodes
335 xc_photons%ex = xc_photons%ex + 0.5_real64 * (xc_photons%pt%dressed_omega(ia)-xc_photons%pt%omega(ia))
381 real(real64),
pointer,
contiguous,
intent(in) :: total_density(:)
382 class(
grid_t),
intent(in) :: gr
386 integer :: ia, ip, iter
387 real(real64) :: unit_volume, r, res, presum, prefact
388 real(real64) :: xx(space%dim), prefactor_lamb
389 real(real64),
allocatable :: prefactor(:)
390 real(real64),
allocatable :: rho_aux(:)
391 real(real64),
allocatable :: grad_rho_aux(:,:)
392 real(real64),
allocatable :: px_source(:)
393 real(real64),
allocatable :: tmp1(:)
394 real(real64),
allocatable :: tmp2(:,:)
395 real(real64),
allocatable :: tmp3(:)
396 real(real64),
allocatable :: grad_vpx(:,:)
397 real(real64),
allocatable :: epsgrad_epsgrad_rho_aux(:)
398 real(real64),
allocatable :: epx_force_module(:)
400 real(real64),
parameter :: threshold = 1e-7_real64
404 if (xc_photons%energy_method == 2 .and. xc_photons%pt%n_electrons >1)
then
411 safe_allocate(prefactor(1:xc_photons%pt%nmodes))
414 safe_allocate(rho_aux(1:gr%np_part))
415 safe_allocate(grad_rho_aux(1:gr%np, 1:xc_photons%pt%dim))
416 safe_allocate(px_source(1:gr%np_part))
417 safe_allocate(tmp1(1:gr%np_part))
418 safe_allocate(tmp2(1:gr%np, 1:xc_photons%pt%dim))
419 safe_allocate(tmp3(1:gr%np_part))
420 safe_allocate(grad_vpx(1:gr%np, 1:xc_photons%pt%dim))
422 safe_allocate(epx_force_module(1:gr%np_part))
425 select case(xc_photons%pt%dim)
438 rho_aux(ip) = ( abs(total_density(ip))/(
m_two*unit_volume) )**(
m_two/(xc_photons%pt%dim*
m_one))
445 if (xc_photons%llamb_freespace)
then
450 prefactor_lamb = -(8.0_real64*
m_pi*
m_third) * xc_photons%lamb_omega / (
p_c**3)
454 xc_photons%vpx(ip) = prefactor_lamb*rho_aux(ip)
460 do ia = 1, xc_photons%pt%nmodes
461 prefactor(ia) = -
m_two*(
m_pi * xc_photons%pt%dressed_lambda(ia) / xc_photons%pt%dressed_omega(ia))**2
464 select case(xc_photons%pt%dim)
468 do ia = 1, xc_photons%pt%nmodes
471 px_source(ip) = px_source(ip) + prefactor(ia)
478 xc_photons%vpx(ip) = px_source(ip)*rho_aux(ip)
491 write(
message(1),
'(a,i6,a)')
"Info: CG converged with ", iter,
" iterations."
492 write(
message(2),
'(a,e14.6)')
"Info: The residue is ", res
503 call dpoisson_solve(psolver, namespace, xc_photons%vpx(:), px_source)
511 call lalg_scal(gr%np, (xc_photons%eta_c * xc_photons%pxlda_kappa), xc_photons%vpx)
515 select case (xc_photons%energy_method)
518 do ia = 1, xc_photons%pt%nmodes
523 epx_force_module(ip) = -prefactor(ia)*
m_two*abs(total_density(ip))*rho_aux(ip)/(xc_photons%pt%dim*
m_one+
m_two)
528 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, tmp2, xc_photons%pt%dressed_pol(1:xc_photons%pt%dim, ia),
m_zero, tmp1)
532 call mesh_r(gr, ip, r, coords=xx)
533 tmp3(ip) = tmp1(ip)*dot_product(xx(1:xc_photons%pt%dim), xc_photons%pt%dressed_pol(1:xc_photons%pt%dim, ia))
540 xc_photons%ex = xc_photons%eta_c * xc_photons%pxlda_kappa * xc_photons%ex
544 rho_aux(1:gr%np) =
sqrt(abs( total_density(1:gr%np)))
546 safe_allocate(epsgrad_epsgrad_rho_aux(1:gr%np))
550 do ia = 1, xc_photons%pt%nmodes
551 prefact = (xc_photons%pt%dressed_lambda(ia)**2) / (
m_two*xc_photons%pt%dressed_omega(ia)**2)
553 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, grad_rho_aux, xc_photons%pt%dressed_pol(:, ia),
m_zero, tmp1)
555 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, tmp2, xc_photons%pt%dressed_pol(1:xc_photons%pt%dim, ia),
m_zero, tmp1)
559 epsgrad_epsgrad_rho_aux(ip) = epsgrad_epsgrad_rho_aux(ip) + prefact*tmp1(ip)
565 xc_photons%ex = xc_photons%eta_c *
dmf_dotp(gr, rho_aux(1:gr%np), epsgrad_epsgrad_rho_aux(1:gr%np))
567 safe_deallocate_a(epsgrad_epsgrad_rho_aux)
573 tmp1(ip) = abs( total_density(ip))**((
m_one*xc_photons%pt%dim+
m_two)/(xc_photons%pt%dim*
m_one))
579 do ia = 1, xc_photons%pt%nmodes
580 presum = presum + prefactor(ia)
583 presum = presum * xc_photons%eta_c * xc_photons%pxlda_kappa
585 xc_photons%ex = xc_photons%eta_c * xc_photons%pxlda_kappa * presum *
dmf_integrate(gr, tmp1)
589 safe_deallocate_a(prefactor)
590 safe_deallocate_a(rho_aux)
591 safe_deallocate_a(grad_rho_aux)
592 safe_deallocate_a(px_source)
593 safe_deallocate_a(tmp1)
594 safe_deallocate_a(tmp2)
595 safe_deallocate_a(tmp3)
596 safe_deallocate_a(grad_vpx)
597 safe_deallocate_a(epx_force_module)
605 real(real64),
contiguous,
intent(in) :: x(:)
606 real(real64),
contiguous,
intent(out) :: Hx(:)
608 real(real64),
allocatable :: tmpx(:)
610 safe_allocate(tmpx(1:gr%np_part))
613 safe_deallocate_a(tmpx)
618 real(real64),
contiguous,
intent(out) :: px_source(:)
623 do ia = 1, xc_photons%pt%nmodes
624 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, grad_rho_aux, xc_photons%pt%dressed_pol(:, ia),
m_zero, tmp1)
626 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, tmp2, xc_photons%pt%dressed_pol(1:xc_photons%pt%dim, ia),
m_zero, tmp1)
627 call lalg_axpy(gr%np, prefactor(ia), tmp1, px_source)
668 real(real64),
pointer,
contiguous,
intent(in) :: total_density(:)
669 class(
grid_t),
intent(in) :: gr
670 type(
space_t),
intent(in) :: space
674 real(real64) :: prefactor_lamb
675 real(real64) :: xx(space%dim), r
676 real(real64),
allocatable :: prefactor(:)
677 real(real64),
allocatable :: rho_aux(:)
678 real(real64),
allocatable :: grad_rho_aux(:,:)
679 real(real64),
allocatable :: grad_vpx(:,:)
680 real(real64),
allocatable :: epsgrad_epsgrad_rho_aux(:)
681 real(real64),
allocatable :: tmp1(:)
682 real(real64),
allocatable :: tmp2(:,:)
683 real(real64) :: shift
687 if (st%d%nspin >1)
then
688 call messages_not_implemented(
"PhotonXCXCMethod = wavefunction for polarized and spinor cases", namespace=namespace)
691 if (xc_photons%pt%n_electrons >1)
then
698 safe_allocate(prefactor(1:xc_photons%pt%nmodes))
700 safe_allocate(rho_aux(1:gr%np_part))
702 safe_allocate(grad_rho_aux(1:gr%np, 1:xc_photons%pt%dim))
704 safe_allocate(epsgrad_epsgrad_rho_aux(1:gr%np))
705 safe_allocate(grad_vpx(1:gr%np, 1:xc_photons%pt%dim))
706 safe_allocate(tmp1(1:gr%np_part))
707 safe_allocate(tmp2(1:gr%np_part, 1:xc_photons%pt%dim))
710 rho_aux(1:gr%np) =
sqrt(abs( total_density(1:gr%np)))
713 rho_aux(ip) = safe_tol(rho_aux(ip),1e-18_real64)
717 if (xc_photons%llamb_freespace)
then
723 call lalg_scal(gr%np, prefactor_lamb, epsgrad_epsgrad_rho_aux)
727 do ia = 1, xc_photons%pt%nmodes
728 prefactor(ia) = (xc_photons%pt%dressed_lambda(ia)**2) / (
m_two*xc_photons%pt%dressed_omega(ia)**2)
733 epsgrad_epsgrad_rho_aux =
m_zero
734 do ia = 1, xc_photons%pt%nmodes
736 call lalg_gemv(gr%np, xc_photons%pt%dim,
m_one, grad_rho_aux, xc_photons%pt%dressed_pol(:, ia),
m_zero, tmp1)
738 call lalg_gemv(gr%np, xc_photons%pt%dim, prefactor(ia), tmp2, xc_photons%pt%dressed_pol(:, ia), &
739 m_one, epsgrad_epsgrad_rho_aux)
746 xc_photons%vpx(ip) = epsgrad_epsgrad_rho_aux(ip)/rho_aux(ip)
750 if(st%eigenval(1,1) <
m_huge .and. .not. space%is_periodic())
then
751 shift =
m_two * st%eigenval(1,1) * prefactor(1)
754 xc_photons%vpx(ip) = xc_photons%vpx(ip) + shift
759 call lalg_scal(gr%np, xc_photons%eta_c, xc_photons%vpx(:))
761 select case (xc_photons%energy_method)
767 call mesh_r(gr, ip, r, coords=xx)
768 tmp1(ip) = - total_density(ip)*dot_product(xx(1:xc_photons%pt%dim), grad_vpx(ip,1:xc_photons%pt%dim))
775 xc_photons%ex = xc_photons%eta_c *
dmf_dotp(gr, rho_aux(1:gr%np), epsgrad_epsgrad_rho_aux)
781 safe_deallocate_a(prefactor)
782 safe_deallocate_a(rho_aux)
783 safe_deallocate_a(grad_rho_aux)
784 safe_deallocate_a(grad_vpx)
785 safe_deallocate_a(epsgrad_epsgrad_rho_aux)
786 safe_deallocate_a(tmp1)
787 safe_deallocate_a(tmp2)
808 class(
grid_t),
intent(in) :: gr
809 class(
space_t),
intent(in) :: space
812 real(real64),
intent(in) :: time
813 real(real64),
intent(in) :: dt
816 integer :: ia, idir, ispin
817 real(real64) :: pol_dot_jp
818 real(real64),
allocatable :: current(:,:,:)
819 real(real64),
allocatable :: jp(:)
824 xc_photons%mf_vector_potential =
m_zero
826 safe_allocate(current(1:gr%np_part, 1:space%dim, 1:st%d%nspin))
833 safe_allocate(jp(1:space%dim))
834 do idir = 1, space%dim
836 do ispin = 1, st%d%spin_channels
837 jp(idir) = jp(idir) +
dmf_integrate(gr%der%mesh, current(:,idir,ispin))
842 do ia = 1, xc_photons%pt%nmodes
843 pol_dot_jp = dot_product(xc_photons%pt%dressed_pol(1:space%dim, ia),jp(1:space%dim))
844 xc_photons%jp_proj_eo(ia,1) = xc_photons%jp_proj_eo(ia,1) + &
845 cos(xc_photons%pt%dressed_omega(ia)*( time-dt))*pol_dot_jp*dt
846 xc_photons%jp_proj_eo(ia,2) = xc_photons%jp_proj_eo(ia,2) + &
847 sin(xc_photons%pt%dressed_omega(ia)*( time-dt))*pol_dot_jp*dt
850 do ia = 1, xc_photons%pt%nmodes
851 xc_photons%mf_vector_potential(1:xc_photons%pt%dim) = xc_photons%mf_vector_potential(1:xc_photons%pt%dim) &
852 + (-
p_c*(xc_photons%pt%dressed_lambda(ia)**2) / xc_photons%pt%dressed_omega(ia)) &
853 * (xc_photons%jp_proj_eo(ia,1)*
sin(xc_photons%pt%dressed_omega(ia)* time) &
854 - xc_photons%jp_proj_eo(ia,2)*
cos(xc_photons%pt%dressed_omega(ia)* time)) &
855 * xc_photons%pt%dressed_pol(1:xc_photons%pt%dim, ia)
858 safe_deallocate_a(current)
859 safe_deallocate_a(jp)
871 logical pure function xc_photons_wants_to_renormalize_mass(xc_photons) result (renorm)
874 renorm = (xc_photons%method>0) .and. xc_photons%llamb_freespace .and. xc_photons%llamb_re_mass
879 real(real64)
pure function xc_photons_get_renormalized_emass(xc_photons) result(mass)
882 mass = m_one - (m_four*xc_photons%lamb_omega) / (3.0*m_pi * p_c**3)
890 type(restart_t),
intent(in) :: restart
891 integer,
intent(out) :: ierr
893 character(len=80),
allocatable :: lines(:)
894 integer :: iunit, err, jj, nmodes
897 push_sub(photon_free_mf_dump)
898 nmodes = xc_photons%pt%nmodes
899 pt_dim = xc_photons%pt%dim
901 safe_allocate(lines(1:nmodes+pt_dim))
905 iunit = restart_open(restart,
'photon_free_mf')
908 write(lines(jj),
'(2x, es19.12)') xc_photons%mf_vector_potential(jj)
912 write(lines(jj+pt_dim),
'(a10,1x,I8,a1,2x,2(es19.12,2x))')
'Mode ', jj,
":", xc_photons%jp_proj_eo(jj,1:2)
915 call restart_write(restart, iunit, lines, nmodes+pt_dim, err)
916 if (err /= 0) ierr = ierr + 1
917 call restart_close(restart, iunit)
919 safe_deallocate_a(lines)
921 pop_sub(photon_free_mf_dump)
930 type(restart_t),
intent(in) :: restart
931 class(space_t),
intent(in) :: space
932 integer,
intent(out) :: ierr
934 character(len=80),
allocatable :: lines(:)
935 character(len=7) :: sdummy
937 integer :: iunit, err, jj, nmodes
940 push_sub(photon_free_mf_load)
943 nmodes = xc_photons%pt%nmodes
944 pt_dim = xc_photons%pt%dim
946 if (restart_skip(restart))
then
948 pop_sub(photon_free_mf_load)
952 message(1) =
"Debug: Reading Photon-Free Photons restart."
953 call messages_info(1, namespace=restart%namespace, debug_only=.
true.)
955 if ( .not.
allocated(xc_photons%jp_proj_eo))
then
956 safe_allocate(xc_photons%jp_proj_eo(1:xc_photons%pt%nmodes, 1:2))
957 xc_photons%jp_proj_eo = m_zero
959 if ( .not.
allocated(xc_photons%mf_vector_potential))
then
960 safe_allocate(xc_photons%mf_vector_potential(1:space%dim))
961 xc_photons%mf_vector_potential = m_zero
964 safe_allocate(lines(1:nmodes+pt_dim))
965 iunit = restart_open(restart,
'photon_free_mf')
966 call restart_read(restart, iunit, lines, nmodes+pt_dim, err)
971 read(lines(jj),
'(2x, es19.12)') xc_photons%mf_vector_potential(jj)
975 read(lines(jj+pt_dim),
'(a10,1x,I8,a1,2x,2(es19.12,2x))') sdummy, idummy, sdummy, xc_photons%jp_proj_eo(jj,1:2)
978 call restart_close(restart, iunit)
980 message(1) =
"Debug: Reading Photons restart done."
981 call messages_info(1, namespace=restart%namespace, debug_only=.
true.)
983 safe_deallocate_a(lines)
985 pop_sub(photon_free_mf_load)
constant times a vector plus a vector
Copies a vector x, to a vector y.
scales a vector by a constant
double sin(double __x) __attribute__((__nothrow__
double sqrt(double __x) __attribute__((__nothrow__
double cos(double __x) __attribute__((__nothrow__
This module calculates the derivatives (gradients, Laplacians, etc.) of a function.
subroutine, public dderivatives_grad(der, ff, op_ff, ghost_update, set_bc, to_cartesian)
apply the gradient to a mesh function
subroutine, public dderivatives_lapl(der, ff, op_ff, ghost_update, set_bc, factor)
apply the Laplacian to a mesh function
real(real64), parameter, public m_two
real(real64), parameter, public m_huge
real(real64), parameter, public m_zero
real(real64), parameter, public m_four
real(real64), parameter, public m_third
real(real64), parameter, public m_pi
some mathematical constants
real(real64), parameter, public m_half
real(real64), parameter, public p_c
Electron gyromagnetic ratio, see Phys. Rev. Lett. 130, 071801 (2023)
real(real64), parameter, public m_one
real(real64), parameter, public m_three
This module implements the underlying real-space grid.
This module defines various routines, operating on mesh functions.
class(mesh_t), pointer, public mesh_aux
Globally-scoped pointer to the mesh instance.
real(real64) function, public dmf_dotp_aux(f1, f2)
dot product between two vectors (mesh functions)
This module defines the meshes, which are used in Octopus.
pure subroutine, public mesh_r(mesh, ip, rr, origin, coords)
return the distance to the origin for a given grid point
subroutine, public messages_not_implemented(feature, namespace)
character(len=256), dimension(max_lines), public message
to be output by fatal, warning
subroutine, public messages_fatal(no_lines, only_root_writes, namespace)
subroutine, public messages_experimental(name, namespace)
subroutine, public messages_info(no_lines, iunit, debug_only, stress, all_nodes, namespace)
logical function, public parse_is_defined(namespace, name)
subroutine, public photon_mode_end(this)
subroutine, public photon_mode_dressed(this)
subroutine, public photon_mode_set_n_electrons(this, qtot)
subroutine, public photon_mode_init(this, namespace, dim, photon_free)
subroutine, public dpoisson_solve(this, namespace, pot, rho, all_nodes, kernel, reset)
Calculates the Poisson equation. Given the density returns the corresponding potential.
This module is intended to contain "only mathematical" functions and procedures.
subroutine, public states_elec_calc_quantities(gr, st, kpoints, nlcc, kinetic_energy_density, paramagnetic_current, density_gradient, density_laplacian, gi_kinetic_energy_density, st_end)
calculated selected quantities
This module implements the "photon-free" electron-photon exchange-correlation functional.
subroutine photon_free_vpx_wfc(namespace, xc_photons, total_density, gr, space, st)
compute the electron-photon exchange potential based on wave functions
logical pure function xc_photons_wants_to_renormalize_mass(xc_photons)
indicate whether the photon-exchange requires a renormalized electron mass
subroutine xc_photons_init(xc_photons, namespace, xc_photon, space, gr, st)
initialize the photon-exchange functional
subroutine xc_photons_add_mean_field(xc_photons, gr, space, kpoints, st, time, dt)
accumulate the results of time integral the paramagnetic current.
subroutine xc_photons_mf_dump(xc_photons, restart, ierr)
write restart information
subroutine xc_photons_v_ks(xc_photons, namespace, total_density, gr, space, psolver, ep, st)
evaluate the KS potential and energy for the given functional
real(real64) pure function xc_photons_get_renormalized_emass(xc_photons)
return the renormalized electron mass for the electron-photon exhange
integer, parameter, private xc_photons_lda
subroutine photon_free_vpx_lda(namespace, xc_photons, total_density, gr, space, psolver)
compute the electron-photon exchange potential within the LDA
subroutine xc_photons_end(this)
integer, parameter, private xc_photons_wfs
subroutine xc_photons_mf_load(xc_photons, restart, space, ierr)
load restart information
Description of the grid, containing information on derivatives, stencil, and symmetries.
The states_elec_t class contains all electronic wave functions.
This class described the 'photon-exchange' electron-photon xc functionals, based on QEDFT.
subroutine laplacian_op(x, hx)
Computes .
subroutine get_px_source(px_source)