Personal profile
Research
My research can be subdivided in three major themes that are briefly discussed below.
1. Subsystem Methods based on Density Functional Theory
In this programme we develop and apply subsystem approaches that connect various quantum and classical mechanical methods. Using density functional theory (DFT) as unifying theory, we work on methods in which local electronic properties are calculated with accurate coupled cluster methods while the electronic structure of the environment is treated using a DFT or approximate DFT approach. This not only speeds up calculations by orders of magnitudes but also keeps a local picture that facilitates the transfer of results to model hamiltonian approaches. This enables multiscale approaches to the modeling of complex systems for a wide range of research fields; examples are enzymatic catalysis, virtual screening of pharmaceutically active compouds and light harvesting, in which respectively reaction rates, binding affinities, and excitonic couplings are input for models used at higher length and time scales.
2. Reducing the time-to-solution of computational models
In this line of research I work closely with the in-house SCM company and computer scientists to improve upon the speed and numerical accuracy of DFT-based modeling. We have recently extended our python-based scripting environment for multiscale computational workflows to automatically exploit parallelism. This enables use of the relatively cheap resources available in computational grids.
To shorten the time spent in indivdual calculations we work on tensor contraction algorithms to scale up to the thousands of processor cores available in the next generation supercomputers. This is combined with the development of algorithms suitable for GPU-accelaration as they are found in both supercomputers as well as in desktop computers.
An important research line in this field concerns the investigation of quantum chemistry algorithms that can be run on quantum computers. Here we consider composite methods in which an otherwise intractable electron correlation problem can be solved using a quantum computer, while the another part of the calculation is done using a conventional computer.
3. Development and application of relativistic computational chemistry techniques
Standard quantum chemistry techniques are not suited for high precision calculations on molecules containing heavy elements because the strong electrostatic potential in the vicinity of the nuclei accelerates the electrons to velocities that approach the speed of light. The Dirac relativistic quantum theory of Dirac describes this high-velocity regime properly and can thus be used to develop a more general quantum chemical framework. In a long-standing European collaboration we work on development of relativistic methods with a focus on methods that allow for accurate treatment of electron correlation effects. In collaboration with users of our DIRAC program system I thereby worked on a wide range of topics (metrology, quantum computing, nuclear quadrupole moments, main group metal clusters) for which the use of highly accurate electronic structure methods is crucial. In my own group I mostly focused on applications to actinide chemistry, a field that has only just become accessible for accurate quantumchemical modeling. We are now able to achieve chemical accuracy by use of multireference coupled cluster techniques based on a relativistic Hamiltonian. With our development of efficient algorithms and advances in computer technology it is nowadays possible to study realistic systems and we collaborate with applied theoretical groups (in the US, Germany and France) to study various aspects of actinide chemistry.
Ancillary activities
- QvissC | Almere | Directeur/eigenaar | 2026-03-15 - 2026-09-15
Ancillary activities are updated daily
Education
1978-1984 VWO – Rijksscholengemeenschap Meppel
1984-1989 Master (drs.) in Chemistry – Rijks Universiteit Groningen (RuG)
1989-1993 Doctorate in Science – RuG
Thesis: Relativity and Electron Correlation in Chemistry
Promotor: Prof Dr W. C. Nieuwpoort
Date and judicium: September 10, 1993 cum laude
Prizes and Awards
1996: Clemens Roothaan award, KNCV
2005: Vici, NWO
2006: Dirac Medal, World Association of Theoretical Chemists
2010: Wiley Visiting Scientist, Pacific Northwest National Laboratory
Teaching
Bachelor level
Introdction to Scientific Programming (2017-present)
Thermodynamics (2012-present)
Introduction to Chemistry (2015-2017)
Molecular Quantum Mechanics (2010-2012)
Nuclear Chemistry (2010-2012)
Programming for Chemists (2004-2012)
Inorganic Chemistry (2006-2010)
Chemical Bonding (1998-2003)
Master level
Understanding Quantum Chemistry (1998-present)
Relativistic Quantum Chemistry (1998-present)
Advanced Molecular Quantum Mechanics (2011-present)
Scientific Computing and Programming (2009-present)
Quantum Theory of Molecules and Matter (2008-2012)
Postdoctoral level (Summer and Winterschools)
European School in Quantum Chemistry, Palermo (2005-2017)
Actinide Chemistry, Helsinki (2007).
Giambiagi Winterschool, Buenos Aires (2006).
ACTINET school in Theoretical Actinide Chemistry, Lille (2006)
Theoretical Chemistry, Mariapfarr (2004).
Theory and Spectroscopy, Han-Sur-Lesse (Belgium), (1999, 2011, 2016)
Determination of Nuclear Quadrupole Moments, Helsinki (1996).
Academic qualification
PhD, Relativity and Electron Correlation in Chemistry, University of Groningen
Award Date: 10 Sept 1993
Keywords
- QD Chemistry
Expertise related to UN Sustainable Development Goals
In 2015, UN member states agreed to 17 global Sustainable Development Goals (SDGs) to end poverty, protect the planet and ensure prosperity for all. This person’s work contributes towards the following SDG(s):
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SDG 6 Clean Water and Sanitation
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SDG 7 Affordable and Clean Energy
Fingerprint
- 1 Similar Profiles
Collaborations and top research areas from the last five years
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The Amsterdam Modeling Suite
Baerends, E. J., Aguirre, N. F., Austin, N. D., Autschbach, J., Bickelhaupt, F. M., Bulo, R., Cappelli, C., van Duin, A. C. T., Egidi, F., Fonseca Guerra, C., Förster, A., Franchini, M., Goumans, T. P. M., Heine, T., Hellström, M., Jacob, C. R., Jensen, L., Krykunov, M., van Lenthe, E. & Michalak, A. & 14 others, , 28 Apr 2025, In: Journal of Chemical Physics. 162, 16, p. 1-47 47 p., 162501.Research output: Contribution to Journal › Article › Academic › peer-review
Open Access -
The DIRAC code for relativistic molecular calculations
Saue, T., Bast, R., Gomes, A. S. P., Jensen, H. J. A., Visscher, L., Aucar, I. A., Di Remigio, R., Dyall, K. G., Eliav, E., Fasshauer, E., Fleig, T., Halbert, L., Hedegård, E. D., Helmich-Paris, B., Iliaš, M., Jacob, C. R., Knecht, S., Laerdahl, J. K., Vidal, M. L. & Nayak, M. K. & 7 others, , 29 May 2020, In: The Journal of chemical physics. 152, 20, p. 1-17 17 p., 204104.Research output: Contribution to Journal › Article › Academic › peer-review
Open AccessFile1157 Downloads (Pure) -
Absolute Configuration Determination with Electronically Enhanced Vibrational Circular Dichroism
Sapova, M., Kumar, C., Ashtari-Jafari, S., Buma, W. J. & Visscher, L., 2 Jan 2026, In: Angewandte Chemie - International Edition. 65, 1, p. 1-12 12 p., e17979.Research output: Contribution to Journal › Article › Academic › peer-review
Open Access -
Modeling Heterogeneous Catalysis Using Quantum Computers: An Academic and Industry Perspective
Hariharan, S., Kinge, S. & Visscher, L., 27 Jan 2025, In: Journal of chemical information and modeling. 65, 2, p. 472-511 40 p.Research output: Contribution to Journal › Review article › Academic › peer-review
Open Access -
A state-averaged orbital-optimized hybrid quantum–classical algorithm for a democratic description of ground and excited states
Yalouz, S., Senjean, B., Günther, J., Buda, F., O'Brien, T. E. & Visscher, L., Apr 2021, In: Quantum Science and Technology. 6, 2, p. 1-20 20 p., 024004.Research output: Contribution to Journal › Article › Academic › peer-review
Courses
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SEQUOIA: Suppressing Exciton Quenching in OLEDs: an Integrated Approach
Visscher, L. (Project Researcher) & Sapova, M. (Project Researcher)
1/09/23 → 31/08/27
Project: Research
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Development and implementation of reduced density matrix functionals for relativistic quantum chemistry.
Visscher, L. (Principal Investigator) & Rodriguez Mayorga, M. (Project Researcher)
1/02/21 → 31/01/23
Project: Research
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Speerpunten van de Quantum/Nano-revolutie
Visscher, L. (Principal Investigator) & Yalouz, S. (Project Researcher)
15/07/19 → 31/01/22
Project: Research
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Smarter Software for advanced material design
Visscher, L. (Principal Investigator) & Förster, A. (Project Researcher)
1/10/18 → 30/09/22
Project: Research
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eScience - Technology to Boost Quantum Dot Energy Conversion
Visscher, L. (Principal Investigator) & van Beek, B. (Project Researcher)
15/05/18 → 31/08/22
Project: Research
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Physical Chemistry Chemical Physics - PCCP (Journal)
Visscher, L. (Member of editorial board), Bolhuis, P. (Member of editorial board) & Bickelhaupt, F. M. (Member of editorial board)
2011Activity: Peer review and Editorial work › Editorial work › Academic
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Physical Chemistry Chemical Physics - PCCP (Journal)
Visscher, L. (Member of editorial board), Bolhuis, P. (Member of editorial board) & Bickelhaupt, F. M. (Member of editorial board)
2011Activity: Peer review and Editorial work › Editorial work › Academic
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The quarternion modified Dirac equation
Visscher, L. (Speaker)
30 May 2000Activity: Lecture / Presentation › Academic
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4-Component relativistic electronic structure methods. Theory, implementation and applications
Visscher, L. (Speaker)
5 Jun 2000Activity: Lecture / Presentation › Academic
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Relativistic Calculation of Magnetic Properties of Molecules.
Visscher, L. (Speaker)
12 Sept 1999Activity: Lecture / Presentation › Academic
Prizes / Grants
Datasets
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DIRAC22
Jensen, H. J. A. (Creator), Bast, R. (Creator), Gomes, A. S. P. (Creator), Saue, T. (Creator), Visscher, L. (Creator), Aucar, I. A. (Creator), Bakken, V. (Creator), Chibueze, C. (Creator), Creutzberg, J. (Creator), Dyall, K. G. (Creator), Dubillard, S. (Creator), Ekström, U. (Creator), Eliav, E. (Creator), Enevoldsen, T. (Creator), Faßhauer, E. (Creator), Fleig, T. (Creator), Fossgaard, O. (Creator), Halbert, L. (Creator), Hedegård, E. D. (Creator), Helgaker, T. (Creator), Helmich-Paris, B. (Creator), Henriksson, J. (Creator), van Horn, M. (Creator), Iliaš, M. (Creator), Jacob, C. R. (Creator), Knecht, S. (Creator), Komorovský, S. (Creator), Kullie, O. (Creator), Lærdahl, J. K. (Creator), Larsen, C. V. (Creator), Lee, Y. S. (Creator), List, N. H. (Creator), Nataraj, H. S. (Creator), Nayak, M. K. (Creator), Norman, P. (Creator), Olejniczak, G. (Creator), Olsen, J. M. H. (Creator), Olsen, J. M. H. (Creator), Papadopoulos, A. (Creator), Park, Y. C. (Creator), Pedersen, J. K. (Creator), Pernpointner, M. (Creator), Pototschnig, J. V. (Creator), Di Remigio, R. (Creator), Repiský, M. (Creator), Ruud, K. (Creator), Sałek, P. (Creator), Schimmelpfennig, B. (Creator), Senjean, B. (Creator), Shee, A. (Creator), Sikkema, J. (Creator), Sunaga, A. (Creator), Thorvaldsen, A. J. (Creator), Thyssen, J. (Creator), van Stralen, J. (Creator), Vidal, M. L. (Creator), Villaume, S. (Creator), Visser, O. (Creator), Winther, T. (Creator), Yamamoto, S. (Creator) & Yuan, X. (Creator), Zenodo, 8 Feb 2022
Dataset / Software: Dataset
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Dataset: Electronic Spectra of Ytterbium Fluoride from Relativistic Electronic Structure Calculations
Pototschnig, J. V. (Contributor), Dyall, K. G. (Contributor), Visscher, L. (Contributor) & Gomes, A. S. P. (Contributor), Zenodo, 2021
DOI: 10.5281/zenodo.5121372, https://zenodo.org/record/5121372
Dataset / Software: Dataset
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Equation-of-Motion Coupled-Cluster Theory based on the 4-component Dirac--Coulomb(--Gaunt) Hamiltonian. Energies for single electron detachment, attachment and electronically excited states: Dataset
Shee, A. (Contributor), Saue, T. (Contributor), Visscher, L. (Contributor) & Severo Pereira Gomes, A. (Contributor), Zenodo, 2018
DOI: 10.5281/zenodo.1320320, https://zenodo.org/record/1320320
Dataset / Software: Dataset
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Equation-of-Motion Coupled-Cluster Theory based on the 4-component Dirac--Coulomb(--Gaunt) Hamiltonian. Energies for single electron detachment, attachment and electronically excited states: Dataset
Visscher, L. (Contributor), Saue, T. (Contributor), Severo Pereira Gomes, A. (Contributor) & Shee, A. (Contributor), Zenodo, 24 Jul 2018
DOI: 10.5281/zenodo.1320320, https://zenodo.org/record/1320320
Dataset / Software: Dataset