@article{46000,
  author       = {{Su, Ran and Wang, Zhipeng and Zhu, Lina and Pan, Ying and Zhang, Dawei and Wen, Hui and Luo, Zheng‐Dong and Li, Linglong and Li, Fa‐tang and Wu, Ming and He, Liqiang and Sharma, Pankaj and Seidel, Jan}},
  issn         = {{1433-7851}},
  journal      = {{Angewandte Chemie International Edition}},
  keywords     = {{General Chemistry, Catalysis}},
  number       = {{29}},
  pages        = {{16019--16026}},
  publisher    = {{Wiley}},
  title        = {{{Strain‐Engineered Nano‐Ferroelectrics for High‐Efficiency Piezocatalytic Overall Water Splitting}}},
  doi          = {{10.1002/anie.202103112}},
  volume       = {{60}},
  year         = {{2021}},
}

@article{46009,
  author       = {{Hu, Jie and Jiang, Daochuan and Weng, Zhaoyue and Pan, Ying and Li, Zhongjun and Du, Haiwei and Yuan, Yupeng}},
  issn         = {{1385-8947}},
  journal      = {{Chemical Engineering Journal}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, Environmental Chemistry, General Chemistry}},
  publisher    = {{Elsevier BV}},
  title        = {{{A universal electrochemical activation enabling lattice oxygen activation in nickel-based catalyst for efficient water oxidation}}},
  doi          = {{10.1016/j.cej.2021.132736}},
  volume       = {{430}},
  year         = {{2021}},
}

@article{46017,
  author       = {{Zhang, Dawei and Luo, Zheng-Dong and Yao, Yin and Schoenherr, Peggy and Sha, Chuhan and Pan, Ying and Sharma, Pankaj and Alexe, Marin and Seidel, Jan}},
  issn         = {{1530-6984}},
  journal      = {{Nano Letters}},
  keywords     = {{Mechanical Engineering, Condensed Matter Physics, General Materials Science, General Chemistry, Bioengineering}},
  number       = {{2}},
  pages        = {{995--1002}},
  publisher    = {{American Chemical Society (ACS)}},
  title        = {{{Anisotropic Ion Migration and Electronic Conduction in van der Waals Ferroelectric CuInP2S6}}},
  doi          = {{10.1021/acs.nanolett.0c04023}},
  volume       = {{21}},
  year         = {{2021}},
}

@article{41007,
  abstract     = {{Two closely related FeII complexes with 2,6-bis(1-ethyl-1H-1,2,3-triazol-4yl)pyridine and 2,6-bis(1,2,3-triazol-5-ylidene)pyridine ligands are presented to gain new insights into the photophysics of bis(tridentate) iron(II) complexes. The [Fe(N^N^N)2]2+ pseudoisomer sensitizes singlet oxygen through a MC state with nanosecond lifetime after MLCT excitation, while the bis(tridentate) [Fe(C^N^C)2]2+ pseudoisomer possesses a similar 3MLCT lifetime as the tris(bidentate) [Fe(C^C)2(N^N)]2+ complexes with four mesoionic carbenes.}},
  author       = {{Dierks, Philipp and Kruse, Ayla and Bokareva, Olga S. and Al-Marri, Mohammed J. and Kalmbach, Jens and Baltrun, Marc and Neuba, Adam and Schoch, Roland and Hohloch, Stephan and Heinze, Katja and Seitz, Michael and Kühn, Oliver and Lochbrunner, Stefan and Bauer, Matthias}},
  issn         = {{1359-7345}},
  journal      = {{Chemical Communications}},
  keywords     = {{Materials Chemistry, Metals and Alloys, Surfaces, Coatings and Films, General Chemistry, Ceramics and Composite, Metallkomplexe, Optical and Magnetic Materials, Catalysis}},
  number       = {{54}},
  pages        = {{6640--6643}},
  publisher    = {{Royal Society of Chemistry (RSC)}},
  title        = {{{Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes}}},
  doi          = {{10.1039/d1cc01716k}},
  volume       = {{57}},
  year         = {{2021}},
}

@article{37947,
  author       = {{Paradies, Jan and Andexer, Jennifer and Beifuss, Uwe and Beuerle, Florian and Brasholz, Malte and Breinbauer, Rolf and Ernst, Martin and Ganardi, Ruth and Gulder, Tobias A. M. and Hüttel, Wolfgang and Kath‐Schorr, Stephanie and Körber, Karsten and Kordes, Markus and Lehmann, Matthias and Lindel, Thomas and Luy, Burkhard and Mück‐Lichtenfeld, Christian and Muhle‐Goll, Claudia and Niemeyer, Jochen and Pfau, Roland and Pietruszka, Jörg and Röckl, Johannes L. and Schaschke, Norbert and Senge, Mathias O. and Straub, Bernd F. and Waldvogel, Siegfried R. and Werner, Thomas and Werz, Daniel B. and Winter, Christian}},
  issn         = {{1439-9598}},
  journal      = {{Nachrichten aus der Chemie}},
  keywords     = {{General Chemical Engineering, General Chemistry}},
  number       = {{3}},
  pages        = {{38--68}},
  publisher    = {{Wiley}},
  title        = {{{Organische Chemie}}},
  doi          = {{10.1002/nadc.20214105947}},
  volume       = {{69}},
  year         = {{2021}},
}

@article{40250,
  author       = {{Jain, Mitisha and Gerstmann, Uwe and Schmidt, Wolf Gero and Aldahhak, Hazem}},
  issn         = {{0192-8651}},
  journal      = {{Journal of Computational Chemistry}},
  keywords     = {{Computational Mathematics, General Chemistry}},
  number       = {{6}},
  pages        = {{413--420}},
  publisher    = {{Wiley}},
  title        = {{{Adatom mediated adsorption of            <scp>N‐heterocyclic</scp>            carbenes on Cu(111) and Au(111)}}},
  doi          = {{10.1002/jcc.26801}},
  volume       = {{43}},
  year         = {{2021}},
}

@article{29747,
  author       = {{Jurgen von Bardeleben, Hans and Cantin, Jean-Louis and Gerstmann, Uwe and Schmidt, Wolf Gero and Biktagirov, Timur}},
  issn         = {{1530-6984}},
  journal      = {{Nano Letters}},
  keywords     = {{Mechanical Engineering, Condensed Matter Physics, General Materials Science, General Chemistry, Bioengineering}},
  number       = {{19}},
  pages        = {{8119--8125}},
  publisher    = {{American Chemical Society (ACS)}},
  title        = {{{Spin Polarization, Electron–Phonon Coupling, and Zero-Phonon Line of the NV Center in 3C-SiC}}},
  doi          = {{10.1021/acs.nanolett.1c02564}},
  volume       = {{21}},
  year         = {{2021}},
}

@article{40571,
  author       = {{Kossmann, Janina and Piankova, Diana and Tarakina, Nadezda V. and Heske, Julian and Kühne, Thomas D. and Schmidt, Johannes and Antonietti, Markus and Lopez Salas, Nieves}},
  issn         = {{0008-6223}},
  journal      = {{Carbon}},
  keywords     = {{General Chemistry, General Materials Science}},
  publisher    = {{Elsevier BV}},
  title        = {{{Corrigendum to ‘Guanine condensates as covalent materials and the concept of cryptopores’ [Carbon 172 (2021) 497–505]}}},
  doi          = {{10.1016/j.carbon.2021.06.084}},
  volume       = {{182}},
  year         = {{2021}},
}

@article{33646,
  author       = {{Majumdar, I. and Sahoo, S.K. and Parvan, V. and Mirhosseini, Hossein and Chacko, B. and Wang, Y. and Greiner, D. and Kühne, Thomas and Schlatmann, R. and Lauermann, I.}},
  issn         = {{0169-4332}},
  journal      = {{Applied Surface Science}},
  keywords     = {{Surfaces, Coatings and Films, Condensed Matter Physics, Surfaces and Interfaces, General Physics and Astronomy, General Chemistry}},
  publisher    = {{Elsevier BV}},
  title        = {{{Effects of KF and RbF treatments on Cu(In,Ga)Se2-based solar cells: A combined photoelectron spectroscopy and DFT study}}},
  doi          = {{10.1016/j.apsusc.2020.148085}},
  volume       = {{538}},
  year         = {{2020}},
}

@article{33647,
  author       = {{Kossmann, Janina and Piankova, Diana and Tarakina, Nadezda V. and Heske, Julian Joachim and Kühne, Thomas and Schmidt, Johannes and Antonietti, Markus and López-Salas, Nieves}},
  issn         = {{0008-6223}},
  journal      = {{Carbon}},
  keywords     = {{General Chemistry, General Materials Science}},
  pages        = {{497--505}},
  publisher    = {{Elsevier BV}},
  title        = {{{Guanine condensates as covalent materials and the concept of cryptopores}}},
  doi          = {{10.1016/j.carbon.2020.10.047}},
  volume       = {{172}},
  year         = {{2020}},
}

@article{34090,
  author       = {{Riedl, Thomas and Lindner, Jörg}},
  issn         = {{0038-1098}},
  journal      = {{Solid State Communications}},
  keywords     = {{Materials Chemistry, Condensed Matter Physics, General Chemistry}},
  publisher    = {{Elsevier BV}},
  title        = {{{Applicability of molecular statics simulation to partial dislocations in GaAs}}},
  doi          = {{10.1016/j.ssc.2020.113927}},
  volume       = {{314-315}},
  year         = {{2020}},
}

@article{34089,
  author       = {{Riedl, Thomas and Lindner, Jörg}},
  issn         = {{0038-1098}},
  journal      = {{Solid State Communications}},
  keywords     = {{Materials Chemistry, Condensed Matter Physics, General Chemistry}},
  publisher    = {{Elsevier BV}},
  title        = {{{Applicability of molecular statics simulation to partial dislocations in GaAs}}},
  doi          = {{10.1016/j.ssc.2020.113927}},
  volume       = {{314-315}},
  year         = {{2020}},
}

@article{47956,
  abstract     = {{Optically nonlinear Pb2B5O9X (X = Cl, Br) borate halides are an important group of materials for second harmonic generation (SHG). Additionally, they also possess excellent photocatalytic activity and stability in the process of dechlorination of chlorophenols, which are typical persistent organic pollutants. It would be of great interest to conduct in situ (photo‐) catalysis investigations during the whole photocatalytic process by SHG when considering them as photocatalytic materials. In order to get superior photocatalytic efficiency and maximum surface information, small particles are highly desired. Here, a low‐cost and fast synthesis route that allows growing microcrystalline optically nonlinear Pb<jats:sub>2</jats:sub>B<jats:sub>5</jats:sub>O<jats:sub>9</jats:sub>X borate halides at large quantities is introduced. When applying the ionothermal growth process at temperatures between 130 and 170 °C, microcrystallites with an average size of about 1 µm precipitate with an orthorhombic hilgardite‐like borate halide structure. Thorough examinations using powder X‐ray diffraction and scanning electron microscopy, the Pb2B5O9X microcrystals are indicated to be chemically pure and single‐phased. Besides, the Pb2B5O9X borate halides' SHG efficiencies are confirmed using confocal SHG microscopy. The low‐temperature synthesis route thus makes these borate halides a highly desirable material for surface studies such as monitoring chemical reactions with picosecond time resolution and in situ (photo‐) catalysis investigations.</jats:p>}},
  author       = {{Tan, Deming and Kirbus, Benjamin and Rüsing, Michael and Pietsch, Tobias and Ruck, Michael and Eng, Lukas M.}},
  issn         = {{1613-6810}},
  journal      = {{Small}},
  keywords     = {{Biomaterials, Biotechnology, General Materials Science, General Chemistry}},
  number       = {{23}},
  publisher    = {{Wiley}},
  title        = {{{Resource‐Efficient Low‐Temperature Synthesis of Microcrystalline Pb2B5O9X (X = Cl, Br) for Surfaces Studies by Optical Second Harmonic Generation}}},
  doi          = {{10.1002/smll.202000857}},
  volume       = {{16}},
  year         = {{2020}},
}

@article{47579,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Die chemische Industrie sieht sich mit gravierenden Herausforderungen konfrontiert: Die Einhaltung der Klimaschutzziele, die Auswirkungen der Energiewende und die zunehmende Bedeutung der Kreislaufwirtschaft treffen die gesamte Wertschöpfungskette. Lösungsansätze von der Prozess‐ über die Apparateebene bis hin zum Einzelphänomen sind notwendig, um die Wettbewerbsfähigkeit dieses zentralen Industriezweigs zu erhalten. In diesem Beitrag werden aktuelle Entwicklungen und zukünftige Handlungsfelder in der Trenntechnik, die für diese Herausforderungen wertvolle Beiträge leisten können, dargestellt.</jats:p>}},
  author       = {{Riese, Julia and Hoff, Andreas and Stock, Jürgen and Górak, Andrzej and Grünewald, Marcus}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{7}},
  pages        = {{818--830}},
  publisher    = {{Wiley}},
  title        = {{{Separation Units 4.0 – Trennapparate heute und morgen}}},
  doi          = {{10.1002/cite.202000032}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47578,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>The change in process industry from fossil resources to alternative feedstock is indispensable due to the scarcity of resources and global warming. This leads to new challenges for the production systems. On the market side, rapid innovation is accompanied by shorter product life cycles leading to an increasing uncertainty of demand in terms of product type, volume and location. Therefore, the following five elements are combined into a concept to address these challenges: transformable production systems, local bio‐based resources, CO<jats:sub>2</jats:sub> as feedstock, renewable energy and decentral production network with local economies.</jats:p>}},
  author       = {{Finkbeiner, Marco and Pannok, Maik and Fasel, Henrik and Riese, Julia and Lier, Stefan}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{2041--2045}},
  publisher    = {{Wiley}},
  title        = {{{Modular Production with Bio‐Based Resources in a Decentral Production Network}}},
  doi          = {{10.1002/cite.202000072}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47574,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>In this paper, a newly designed distillation column consisting of a wetted wall with a rectangular cross section is analyzed and compared with a conventional packed column with regard to the operating range of both apparatuses. As expected, the pressure drop is considerably lower in the wetted‐wall column and, therefore, it offers a higher range of operation. However, in the wetted‐wall column, the separation efficiency decreases rapidly with increasing <jats:italic>F</jats:italic> factors. This effect can be overcome by the serial connection of two wetted‐wall columns.</jats:p>}},
  author       = {{Reitze, Arnulf and Grünewald, Marcus and Riese, Julia}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{1968--1975}},
  publisher    = {{Wiley}},
  title        = {{{Comparison of the Operating Range of a Wetted‐Wall Column with a Packed Column for Distillation}}},
  doi          = {{10.1002/cite.202000065}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47577,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>This study presents a new and innovative sieve tray design for a more flexible operation of separation columns in terms of possible throughput. The advantage of this new tray design is to ensure an optimal operation for varying feed flow rates and constant separation efficiencies for different load ranges. The aim of this work is to give a short introduction and an outlook to the investigation of the functionality of the designed trays. Moreover, the general design of the new trays, first results for CFD simulations of the dry pressure drop and the experimental setup are presented.</jats:p>}},
  author       = {{Fasel, Henrik and Grünewald, Marcus and Riese, Julia}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{2035--2040}},
  publisher    = {{Wiley}},
  title        = {{{New Column Design to Enhance Flexibility: Concept for Hydrodynamic Characterization}}},
  doi          = {{10.1002/cite.202000055}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47575,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Due to the increasing share of renewable energies in the power sector, the need for energy storage and flexible performance is rising. This study provides an in‐depth investigation of the flexibility of a Power‐to‐Gas plant for the production of synthetic natural gas. Model‐based analysis is conducted for the individual technologies PEM electrolysis, MEA absorption and fixed‐bed methanation as well as for the continuously operated process. This study reveals that the Power‐to‐Gas plant offers a capacity flexibility of 87–125 %, corresponding to 4.79–6.88 MW electrical input power.</jats:p>}},
  author       = {{Herrmann, Felix and Grünewald, Marcus and Riese, Julia}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{1983--1991}},
  publisher    = {{Wiley}},
  title        = {{{Flexibility of Power‐to‐Gas Plants: A Case Study}}},
  doi          = {{10.1002/cite.202000063}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47573,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Flexibility receives increased interest in chemical engineering and is discussed as one measure to deal with upcoming challenges for the chemical industry. In this paper, different types of flexibility are presented, and flexibility needs are illustrated. The focus is on the evaluation and classification of available solutions to enhance flexibility. Solutions and future challenges across all length scales of chemical engineering are discussed: from tailored catalyst properties to decoupling of processes by means of storage.</jats:p>}},
  author       = {{Riese, Julia and Grünewald, Marcus}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{1887--1897}},
  publisher    = {{Wiley}},
  title        = {{{Challenges and Opportunities to Enhance Flexibility in Design and Operation of Chemical Processes}}},
  doi          = {{10.1002/cite.202000057}},
  volume       = {{92}},
  year         = {{2020}},
}

@article{47576,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>A method is proposed to evaluate capacity potentials in continuously operated chemical processes. In the main part of the analysis, the operating windows of the equipment are examined based on detailed steady‐state simulations. The method is applied to a case study of the production process of ethylene oxide as a large‐scale commodity chemical. Results show the limitations continuously operated processes are confronted with. However, opportunities to enlarge or shift the operating window of apparatuses applied are determined.</jats:p>}},
  author       = {{Bruns, Bastian and Grünewald, Marcus and Riese, Julia}},
  issn         = {{0009-286X}},
  journal      = {{Chemie Ingenieur Technik}},
  keywords     = {{Industrial and Manufacturing Engineering, General Chemical Engineering, General Chemistry}},
  number       = {{12}},
  pages        = {{2005--2015}},
  publisher    = {{Wiley}},
  title        = {{{Analysis of Capacity Potentials in Continuously Operated Chemical Processes}}},
  doi          = {{10.1002/cite.202000053}},
  volume       = {{92}},
  year         = {{2020}},
}

