@inproceedings{61362,
  abstract     = {{<jats:p>We study the interaction of gray tracking and DC ionic conductivity in Potassium Titanyl Phosphate (KTiOPO<jats:sub>4</jats:sub>, KTP) and present a novel way to reduce conductivity via a potassium nitrate treatment improving the device quality.</jats:p>}},
  author       = {{Eigner, Christof and Padberg, Laura and Quiring, Viktor and Bocchini, Adriana and Santandrea, Matteo and Gerstmann, Uwe and Schmidt, Wolf Gero and Silberhorn, Christine}},
  booktitle    = {{CLEO 2023}},
  publisher    = {{Optica Publishing Group}},
  title        = {{{Potassium Titanyl Phosphate Material Engineering Boosting Integrated Optical Source Performance}}},
  doi          = {{10.1364/cleo_at.2023.jw2a.57}},
  year         = {{2023}},
}

@inbook{61360,
  author       = {{Hajduk, Andreas and Zare Pour, Mohammad Amin and Paszuk, Agnieszka and Guidat, Margot and Löw, Mario and Ullmann, Fabian and Moritz, Dominik C. and Hofmann, Jan P. and Krischok, Stefan and Runge, Erich and Schmidt, Wolf Gero and Jaegermann, Wolfram and May, Matthias M. and Hannappel, Thomas}},
  booktitle    = {{Encyclopedia of Solid-Liquid Interfaces}},
  isbn         = {{9780323856706}},
  publisher    = {{Elsevier}},
  title        = {{{(Photo-)electrochemical reactions on semiconductor surfaces, part B: III-V surfaces–atomic and electronic structure}}},
  doi          = {{10.1016/b978-0-323-85669-0.00113-6}},
  year         = {{2023}},
}

@inbook{46191,
  author       = {{Alt, Christoph and Kenter, Tobias and Faghih-Naini, Sara and Faj, Jennifer and Opdenhövel, Jan-Oliver and Plessl, Christian and Aizinger, Vadym and Hönig, Jan and Köstler, Harald}},
  booktitle    = {{Lecture Notes in Computer Science}},
  isbn         = {{9783031320408}},
  issn         = {{0302-9743}},
  publisher    = {{Springer Nature Switzerland}},
  title        = {{{Shallow Water DG Simulations on FPGAs: Design and Comparison of a Novel Code Generation Pipeline}}},
  doi          = {{10.1007/978-3-031-32041-5_5}},
  year         = {{2023}},
}

@inproceedings{46190,
  author       = {{Opdenhövel, Jan-Oliver and Plessl, Christian and Kenter, Tobias}},
  booktitle    = {{Proceedings of the 13th International Symposium on Highly Efficient Accelerators and Reconfigurable Technologies (HEART)}},
  publisher    = {{ACM}},
  title        = {{{Mutation Tree Reconstruction of Tumor Cells on FPGAs Using a Bit-Level Matrix Representation}}},
  doi          = {{10.1145/3597031.3597050}},
  year         = {{2023}},
}

@unpublished{32177,
  abstract     = {{We investigate the early time development of the anisotropic transverse flow
and spatial eccentricities of a fireball with various particle-based transport
approaches using a fixed initial condition. In numerical simulations ranging
from the quasi-collisionless case to the hydrodynamic regime, we find that the
onset of $v_n$ and of related measures of anisotropic flow can be described
with a simple power-law ansatz, with an exponent that depends on the amount of
rescatterings in the system. In the few-rescatterings regime we perform
semi-analytical calculations, based on a systematic expansion in powers of time
and the cross section, which can reproduce the numerical findings.}},
  author       = {{Borghini, Nicolas and Borrell, Marc and Roch, Hendrik}},
  booktitle    = {{arXiv:2201.13294}},
  title        = {{{Early time behavior of spatial and momentum anisotropies in kinetic  theory across different Knudsen numbers}}},
  year         = {{2022}},
}

@unpublished{32178,
  abstract     = {{We test the ability of the "escape mechanism" to create the anisotropic flow
observed in high-energy nuclear collisions. We compare the flow harmonics $v_n$
in the few-rescatterings regime from two types of transport simulations, with
$2\to 2$ and $2\to 0$ collision kernels respectively, and from analytical
calculations neglecting the gain term of the Boltzmann equation. We find that
the even flow harmonics are similar in the three approaches, while the odd
harmonics differ significantly.}},
  author       = {{Bachmann, Benedikt and Borghini, Nicolas and Feld, Nina and Roch, Hendrik}},
  booktitle    = {{arXiv:2203.13306}},
  title        = {{{Even anisotropic-flow harmonics are from Venus, odd ones are from Mars}}},
  year         = {{2022}},
}

@article{32183,
  author       = {{Hou, W and Yao, Y and Li, Y and Peng, B and Shi, K and Zhou, Z and Pan, J and Liu, M and Hu, J}},
  issn         = {{2095-025x}},
  journal      = {{Frontiers of materials science}},
  number       = {{1}},
  title        = {{{Linearly shifting ferromagnetic resonance response of La0.7Sr0.3MnO3 thin film for body temperature sensors}}},
  volume       = {{16}},
  year         = {{2022}},
}

@article{32234,
  author       = {{Wojciechowski, M}},
  issn         = {{2352-3409}},
  journal      = {{Data Brief}},
  pages        = {{108318}},
  title        = {{{Dataset for random uniform distributions of 2D circles and 3D spheres.}}},
  volume       = {{43}},
  year         = {{2022}},
}

@phdthesis{32414,
  author       = {{Lass, Michael}},
  publisher    = {{Universität Paderborn}},
  title        = {{{Bringing Massive Parallelism and Hardware Acceleration to Linear Scaling Density Functional Theory Through Targeted Approximations}}},
  doi          = {{10.17619/UNIPB/1-1281}},
  year         = {{2022}},
}

@article{50146,
  abstract     = {{Recent advances in numerical methods significantly pushed forward the
understanding of electrons coupled to quantized lattice vibrations. At this
stage, it becomes increasingly important to also account for the effects of
physically inevitable environments. In particular, we study the transport
properties of the Hubbard-Holstein Hamiltonian that models a large class of
materials characterized by strong electron-phonon coupling, in contact with a
dissipative environment. Even in the one-dimensional and isolated case,
simulating the quantum dynamics of such a system with high accuracy is very
challenging due to the infinite dimensionality of the phononic Hilbert spaces.
For this reason, the effects of dissipation on the conductance properties of
such systems have not been investigated systematically so far. We combine the
non-Markovian hierarchy of pure states method and the Markovian quantum jumps
method with the newly introduced projected purified density-matrix
renormalization group, creating powerful tensor-network methods for dissipative
quantum many-body systems. Investigating their numerical properties, we find a
significant speedup up to a factor $\sim 30$ compared to conventional
tensor-network techniques. We apply these methods to study dissipative
quenches, aiming for an in-depth understanding of the formation, stability, and
quasi-particle properties of bipolarons. Surprisingly, our results show that in
the metallic phase dissipation localizes the bipolarons, which is reminiscent
of an indirect quantum Zeno effect. However, the bipolaronic binding energy
remains mainly unaffected, even in the presence of strong dissipation,
exhibiting remarkable bipolaron stability. These findings shed light on the
problem of designing real materials exhibiting phonon-mediated
high-$T_\mathrm{C}$ superconductivity.}},
  author       = {{Moroder, Mattia and Grundner, Martin and Damanet, François and Schollwöck, Ulrich and Mardazad, Sam and Flannigan, Stuart and Köhler, Thomas and Paeckel, Sebastian}},
  journal      = {{Physical Review B 107, 214310 (2023)}},
  title        = {{{Stable bipolarons in open quantum systems}}},
  doi          = {{10.1103/PhysRevB.107.214310}},
  year         = {{2022}},
}

@article{50148,
  abstract     = {{We develop a general decomposition of an ensemble of initial density profiles
in terms of an average state and a basis of modes that represent the
event-by-event fluctuations of the initial state. The basis is determined such
that the probability distributions of the amplitudes of different modes are
uncorrelated. Based on this decomposition, we quantify the different types and
probabilities of event-by-event fluctuations in Glauber and Saturation models
and investigate how the various modes affect different characteristics of the
initial state. We perform simulations of the dynamical evolution with KoMPoST
and MUSIC to investigate the impact of the modes on final-state observables and
their correlations.}},
  author       = {{Borghini, Nicolas and Borrell, Marc and Feld, Nina and Roch, Hendrik and Schlichting, Sören and Werthmann, Clemens}},
  journal      = {{Phys. Rev. C 107 (2023) 034905}},
  title        = {{{Statistical analysis of initial state and final state response in  heavy-ion collisions}}},
  doi          = {{10.1103/PhysRevC.107.034905}},
  year         = {{2022}},
}

@article{50149,
  abstract     = {{<jats:title>Abstract</jats:title>
               <jats:p>RNA editing processes are strikingly different in animals and plants. Up to thousands of specific cytidines are converted into uridines in plant chloroplasts and mitochondria whereas up to millions of adenosines are converted into inosines in animal nucleo-cytosolic RNAs. It is unknown whether these two different RNA editing machineries are mutually incompatible. RNA-binding pentatricopeptide repeat (PPR) proteins are the key factors of plant organelle cytidine-to-uridine RNA editing. The complete absence of PPR mediated editing of cytosolic RNAs might be due to a yet unknown barrier that prevents its activity in the cytosol. Here, we transferred two plant mitochondrial PPR-type editing factors into human cell lines to explore whether they could operate in the nucleo-cytosolic environment. PPR56 and PPR65 not only faithfully edited their native, co-transcribed targets but also different sets of off-targets in the human background transcriptome. More than 900 of such off-targets with editing efficiencies up to 91%, largely explained by known PPR-RNA binding properties, were identified for PPR56. Engineering two crucial amino acid positions in its PPR array led to predictable shifts in target recognition. We conclude that plant PPR editing factors can operate in the entirely different genetic environment of the human nucleo-cytosol and can be intentionally re-engineered towards new targets.</jats:p>}},
  author       = {{Lesch, Elena and Schilling, Maximilian T and Brenner, Sarah and Yang, Yingying and Gruss, Oliver J and Knoop, Volker and Schallenberg-Rüdinger, Mareike}},
  issn         = {{0305-1048}},
  journal      = {{Nucleic Acids Research}},
  keywords     = {{Genetics}},
  number       = {{17}},
  pages        = {{9966--9983}},
  publisher    = {{Oxford University Press (OUP)}},
  title        = {{{Plant mitochondrial RNA editing factors can perform targeted C-to-U editing of nuclear transcripts in human cells}}},
  doi          = {{10.1093/nar/gkac752}},
  volume       = {{50}},
  year         = {{2022}},
}

@article{54849,
  abstract     = {{<jats:sec><jats:label /><jats:p>The third‐order susceptibility  of lithium niobate (LiNbO<jats:sub>3</jats:sub>) is calculated within a Berry‐phase formulation of the dynamical polarization based on the electronic structure obtained within density‐functional theory (DFT). Maximum  values of the order of  m V are calculated for photon energies between 1.2 and 2 eV, i.e., in the lower half of the optical bandgap of lithium niobate. Both free and bound electron (bi)polarons are found to lead to a remarkable enhancement of the third‐order susceptibility for photon energies below 1 eV.</jats:p></jats:sec>}},
  author       = {{Kozub, Agnieszka L. and Gerstmann, Uwe and Schmidt, Wolf Gero}},
  issn         = {{0370-1972}},
  journal      = {{physica status solidi (b)}},
  number       = {{2}},
  publisher    = {{Wiley}},
  title        = {{{Third‐Order Susceptibility of Lithium Niobate: Influence of Polarons and Bipolarons}}},
  doi          = {{10.1002/pssb.202200453}},
  volume       = {{260}},
  year         = {{2022}},
}

@unpublished{36879,
  abstract     = {{The Julia programming language has evolved into a modern alternative to fill existing gaps in scientific computing and data science applications. Julia leverages a unified and coordinated single-language and ecosystem paradigm and has a proven track record of achieving high performance without sacrificing user productivity. These aspects make Julia a viable alternative to high-performance computing's (HPC's) existing and increasingly costly many-body workflow composition strategy in which traditional HPC languages (e.g., Fortran, C, C++) are used for simulations, and higher-level languages (e.g., Python, R, MATLAB) are used for data analysis and interactive computing. Julia's rapid growth in language capabilities, package ecosystem, and community make it a promising universal language for HPC. This paper presents the views of a multidisciplinary group of researchers from academia, government, and industry that advocate for an HPC software development paradigm that emphasizes developer productivity, workflow portability, and low barriers for entry. We believe that the Julia programming language, its ecosystem, and its community provide modern and powerful capabilities that enable this group's objectives. Crucially, we believe that Julia can provide a feasible and less costly approach to programming scientific applications and workflows that target HPC facilities. In this work, we examine the current practice and role of Julia as a common, end-to-end programming model to address major challenges in scientific reproducibility, data-driven AI/machine learning, co-design and workflows, scalability and performance portability in heterogeneous computing, network communication, data management, and community education. As a result, the diversification of current investments to fulfill the needs of the upcoming decade is crucial as more supercomputing centers prepare for the exascale era.}},
  author       = {{Churavy, Valentin and Godoy, William F and Bauer, Carsten and Ranocha, Hendrik and Schlottke-Lakemper, Michael and Räss, Ludovic and Blaschke, Johannes and Giordano, Mosè and Schnetter, Erik and Omlin, Samuel and Vetter, Jeffrey S and Edelman, Alan}},
  title        = {{{Bridging HPC Communities through the Julia Programming Language}}},
  year         = {{2022}},
}

@article{40523,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Tailored nanoscale quantum light sources, matching the specific needs of use cases, are crucial building blocks for photonic quantum technologies. Several different approaches to realize solid-state quantum emitters with high performance have been pursued and different concepts for energy tuning have been established. However, the properties of the emitted photons are always defined by the individual quantum emitter and can therefore not be controlled with full flexibility. Here we introduce an all-optical nonlinear method to tailor and control the single photon emission. We demonstrate a laser-controlled down-conversion process from an excited state of a semiconductor quantum three-level system. Based on this concept, we realize energy tuning and polarization control of the single photon emission with a control-laser field. Our results mark an important step towards tailored single photon emission from a photonic quantum system based on quantum optical principles.</jats:p>}},
  author       = {{Jonas, B. and Heinze, Dirk Florian and Schöll, E. and Kallert, P. and Langer, T. and Krehs, S. and Widhalm, A. and Jöns, Klaus and Reuter, Dirk and Schumacher, Stefan and Zrenner, Artur}},
  issn         = {{2041-1723}},
  journal      = {{Nature Communications}},
  keywords     = {{General Physics and Astronomy, General Biochemistry, Genetics and Molecular Biology, General Chemistry, Multidisciplinary}},
  number       = {{1}},
  publisher    = {{Springer Science and Business Media LLC}},
  title        = {{{Nonlinear down-conversion in a single quantum dot}}},
  doi          = {{10.1038/s41467-022-28993-3}},
  volume       = {{13}},
  year         = {{2022}},
}

@article{46121,
  author       = {{Altenkort, Luis and Eller, Alexander M. and Kaczmarek, O. and Mazur, Lukas and Moore, Guy D. and Shu, Hai-Tao}},
  issn         = {{2470-0010}},
  journal      = {{Physical Review D}},
  number       = {{9}},
  publisher    = {{American Physical Society (APS)}},
  title        = {{{Lattice QCD noise reduction for bosonic correlators through blocking}}},
  doi          = {{10.1103/physrevd.105.094505}},
  volume       = {{105}},
  year         = {{2022}},
}

@unpublished{33493,
  abstract     = {{Electronic structure calculations have been instrumental in providing many
important insights into a range of physical and chemical properties of various
molecular and solid-state systems. Their importance to various fields,
including materials science, chemical sciences, computational chemistry and
device physics, is underscored by the large fraction of available public
supercomputing resources devoted to these calculations. As we enter the
exascale era, exciting new opportunities to increase simulation numbers, sizes,
and accuracies present themselves. In order to realize these promises, the
community of electronic structure software developers will however first have
to tackle a number of challenges pertaining to the efficient use of new
architectures that will rely heavily on massive parallelism and hardware
accelerators. This roadmap provides a broad overview of the state-of-the-art in
electronic structure calculations and of the various new directions being
pursued by the community. It covers 14 electronic structure codes, presenting
their current status, their development priorities over the next five years,
and their plans towards tackling the challenges and leveraging the
opportunities presented by the advent of exascale computing.}},
  author       = {{Gavini, Vikram and Baroni, Stefano and Blum, Volker and Bowler, David R. and Buccheri, Alexander and Chelikowsky, James R. and Das, Sambit and Dawson, William and Delugas, Pietro and Dogan, Mehmet and Draxl, Claudia and Galli, Giulia and Genovese, Luigi and Giannozzi, Paolo and Giantomassi, Matteo and Gonze, Xavier and Govoni, Marco and Gulans, Andris and Gygi, François and Herbert, John M. and Kokott, Sebastian and Kühne, Thomas and Liou, Kai-Hsin and Miyazaki, Tsuyoshi and Motamarri, Phani and Nakata, Ayako and Pask, John E. and Plessl, Christian and Ratcliff, Laura E. and Richard, Ryan M. and Rossi, Mariana and Schade, Robert and Scheffler, Matthias and Schütt, Ole and Suryanarayana, Phanish and Torrent, Marc and Truflandier, Lionel and Windus, Theresa L. and Xu, Qimen and Yu, Victor W. -Z. and Perez, Danny}},
  booktitle    = {{arXiv:2209.12747}},
  title        = {{{Roadmap on Electronic Structure Codes in the Exascale Era}}},
  year         = {{2022}},
}

@inproceedings{46193,
  author       = {{Karp, Martin and Podobas, Artur and Kenter, Tobias and Jansson, Niclas and Plessl, Christian and Schlatter, Philipp and Markidis, Stefano}},
  booktitle    = {{International Conference on High Performance Computing in Asia-Pacific Region}},
  publisher    = {{ACM}},
  title        = {{{A High-Fidelity Flow Solver for Unstructured Meshes on Field-Programmable Gate Arrays: Design, Evaluation, and Future Challenges}}},
  doi          = {{10.1145/3492805.3492808}},
  year         = {{2022}},
}

@unpublished{32404,
  abstract     = {{The CP2K program package, which can be considered as the swiss army knife of
atomistic simulations, is presented with a special emphasis on ab-initio
molecular dynamics using the second-generation Car-Parrinello method. After
outlining current and near-term development efforts with regards to massively
parallel low-scaling post-Hartree-Fock and eigenvalue solvers, novel approaches
on how we plan to take full advantage of future low-precision hardware
architectures are introduced. Our focus here is on combining our submatrix
method with the approximate computing paradigm to address the immanent exascale
era.}},
  author       = {{Kühne, Thomas and Plessl, Christian and Schade, Robert and Schütt, Ole}},
  booktitle    = {{arXiv:2205.14741}},
  title        = {{{CP2K on the road to exascale}}},
  year         = {{2022}},
}

@article{33226,
  abstract     = {{A parallel hybrid quantum-classical algorithm for the solution of the quantum-chemical ground-state energy problem on gate-based quantum computers is presented. This approach is based on the reduced density-matrix functional theory (RDMFT) formulation of the electronic structure problem. For that purpose, the density-matrix functional of the full system is decomposed into an indirectly coupled sum of density-matrix functionals for all its subsystems using the adaptive cluster approximation to RDMFT. The approximations involved in the decomposition and the adaptive cluster approximation itself can be systematically converged to the exact result. The solutions for the density-matrix functionals of the effective subsystems involves a constrained minimization over many-particle states that are approximated by parametrized trial states on the quantum computer similarly to the variational quantum eigensolver. The independence of the density-matrix functionals of the effective subsystems introduces a new level of parallelization and allows for the computational treatment of much larger molecules on a quantum computer with a given qubit count. In addition, for the proposed algorithm techniques are presented to reduce the qubit count, the number of quantum programs, as well as its depth. The evaluation of a density-matrix functional as the essential part of our approach is demonstrated for Hubbard-like systems on IBM quantum computers based on superconducting transmon qubits.}},
  author       = {{Schade, Robert and Bauer, Carsten and Tamoev, Konstantin and Mazur, Lukas and Plessl, Christian and Kühne, Thomas}},
  journal      = {{Phys. Rev. Research}},
  pages        = {{033160}},
  publisher    = {{American Physical Society}},
  title        = {{{Parallel quantum chemistry on noisy intermediate-scale quantum computers}}},
  doi          = {{10.1103/PhysRevResearch.4.033160}},
  volume       = {{4}},
  year         = {{2022}},
}

