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1. Self-consistent Quantum Linear Response with a Polarizable Embedding environment

2. Divergences in classical and quantum linear response and equation of motion formulations

3. Electric Field Gradient Calculations for Ice VIII and IX using Polarizable Embedding: A Comparative Study on Classical Computers and Quantum Simulators

4. Subspace methods for the simulation of molecular response properties on a quantum computer

5. X-ray Absorption Spectra for Aqueous Ammonia and Ammonium: Quantum Mechanical versus Molecular Mechanical Embedding Schemes

6. Which options exist for NISQ-friendly linear response formulations?

7. Quantum Equation of Motion with Orbital Optimization for Computing Molecular Properties in Near-Term Quantum Computing

8. The variational quantum eigensolver self-consistent field method within a polarizable embedded framework

10. Theoretical and numerical comparison of quantum- and classical embedding models for optical spectra

12. The variational quantum eigensolver self-consistent field method within a polarizable embedded framework.

15. Response properties of embedded molecules through the polarizable embedding model

24. Quantum Mechanical Versus Polarizable Embedding Schemes : A Study of the Xray Absorption Spectra of Aqueous Ammonia and Ammonium

25. Quantum Equation of Motion with Orbital Optimization for Computing Molecular Properties in Near-Term Quantum Computing

26. Which options exist for NISQ-friendly linear response formulations?

27. Quantum Mechanical Versus Molecular Mechanical Embedding Schemes:A Study of the X-ray Absorption Spectra of Aqueous Ammonia and Ammonium

38. The importance of solvent effects in calculations of NMR coupling constants at the doubles corrected Higher Random-Phase Approximation

39. Quantum Equation of Motion with Orbital Optimization for Computing Molecular Properties in Near-Term Quantum Computing

43. Nitrogen K-Edge X-ray Absorption Spectra of Ammonium and Ammonia in Water Solution: Assessing the Performance of Polarizable Embedding Coupled Cluster Methods

44. Dalton Project: A Python platform for molecular- and electronic-structure simulations of complex systems.

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