TY - GEN A1 - Schöneich, Michael A1 - Schmidt, Marcus P. A1 - Schmidt, Peer T1 - Chemical Vapour Transport of Bismuth and Antimony Chalcogenides M2Q3 (M = Sb, Bi, Q = Se, Te) T2 - Zeitschrift für anorganische und allgemeine Chemie N2 - Thermodynamic modelling of the ternary systems M/Q/I (M = Sb, Bi, Q = Se, Te) indicated solid-gas equilibria suitable for chemical vapour transport of bismuth and antimony chalcogenides. The predictions of the modelling were confirmed by transport experiments on a transport balance. The optimum transport conditions using iodine as transport agent were determined for all systems to: ϑsource = 500 °C and ϑsink = 450 °C. For ΔT > 50 K the sequential transport of chalcogenide iodides MQI followed by M2Q3 occurs. Thermodynamic standard data of the gas species SbI(g) were concluded from equilibrium calculations: ΔH0f,298(SbI(g)) = 106 ± 3 kJ·mol–1; S0298(SbI(g)) = 255 ± 3 J·mol–1·K–1; Cp(SbI(g)) = 37 ± 1 J·mol–1·K–1 KW - Antimony KW - Bismuth KW - Selenium KW - Tellurium KW - Chemical vapor transport KW - Thermodynamic modelling Y1 - 2010 UR - http://onlinelibrary.wiley.com/doi/10.1002/zaac.201000149/full U6 - https://doi.org/10.1002/zaac.201000149 SN - 1521-3749 VL - 636 IS - 9-10 SP - 1810 EP - 1816 ER - TY - GEN A1 - Wels, Martin A1 - Schmidt, Peer T1 - Crystal growth of ternary phases with homogeneity range: Modeling and experiments T2 - Zeitschrift für Anorganische und Allgemeine Chemie N2 - Synthesizing crystals of ternary solid solutions M2Q3 (M=Bi, Q=Se, Te) with definite composition requires advanced knowledge on the phase relations in the system. By chemical vapor transport [1] the request of homogeneous crystallization can be fulfilled. The experimental scope gets supported by modeling. A phase diagram of the pseudobinary system generated with FactSage [2] (Fig. 1) provides the thermodynamic parameters of the miscibility gap respectively the solid solution. Additionally, these parameters are used to optimize the processes while chemical vapor transport with iodine [3]. The optimum transport conditions of ϑsource = 500 °C and ϑsink = 450 °C has been applied as for the synthesis of the binary compounds [4]. Both by modeling and experiments the congruent transport can be demonstrated, Fig. 2. KW - Crystal growth KW - Chemical vapor transport KW - Chalogenides KW - Solid solution KW - Phase diagram Y1 - 2016 UR - http://onlinelibrary.wiley.com/doi/10.1002/zaac.201690018/full U6 - https://doi.org/10.1002/zaac.201690018 SN - 1521-3749 VL - 642 IS - 18 SP - 1066 ER - TY - GEN A1 - Wolf, Adrian A1 - Doert, Thomas A1 - Stolze, Karoline A1 - Schmidt, Peer T1 - Modeling of Chemical Vapor Transport of Uranium Phosphide Telluride UPTe T2 - Zeitschrift für Anorganische und Allgemeine Chemie N2 - The crystallization mechanism of uranium phosphide telluride UPTe by chemical vapor transport reaction [1] is presented based on thermodynamic modelling using TRAGMIN program. Evaluation of standard data of all expected species was performed by modeling of the binary phase diagrams U/Te and U/P. Data of UPTe were deduced from known phosphide tellurides[2,3]. Identifying the viable composition area within the quaternary system U/P/Te/I the temperature depending transport equilibria could be obtained. KW - Crystal growth KW - Chemical vapor transport KW - Chalogenides KW - Thermodynamic modeling Y1 - 2014 UR - http://onlinelibrary.wiley.com/doi/10.1002/zaac.201490026/full U6 - https://doi.org/10.1002/zaac.201490026 SN - 1521-3749 VL - 640 IS - 11 SP - 2374 ER - TY - GEN A1 - Heinemann, Robert A1 - Schmidt, Peer T1 - Vapor Transport Investigations using the High-temperature Gas-balance T2 - Zeitschrift für Anorganische und Allgemeine Chemie N2 - The High-temperature Gas-balance (HTGB[1]) has been established as a new method for investigations of heterogeneous phase equilibria with volatile components [1,2]. This equipment is notably well suited to analyze reversible heterogeneous equilibria which occur during chemical vapor transport reactions (CVT[3]). Experimental proof has been furnished by vapor transports of germanium and germanium(II) telluride using iodine as a transport addition. Initially the sublimation of iodine has been observed (section a – Fig. 1). The formation of GeI4(g) as the actual transport agent follows (b). Finally, the transport reaction occurs under reversible formation GeI2(g) (c). KW - Crystal growth KW - Chemical vapor transport KW - Chalogenides KW - High-temperature gas-balance Y1 - 2014 UR - http://onlinelibrary.wiley.com/doi/10.1002/zaac.201490026/full U6 - https://doi.org/10.1002/zaac.201490026 SN - 1521-3749 VL - 640 IS - 11 SP - 2338 ER - TY - GEN A1 - Binnewies, Michael A1 - Schmidt, Marcus A1 - Schmidt, Peer T1 - Chemical Vapor Transport Reactions – Arguments for Choosing a Suitable Transport Agent T2 - Zeitschrift für Anorganische und Allgemeine Chemie N2 - A variety of processes of crystal growth proceeds via the gas phase. If the initial solid material is volatilized in a heterogeneous reaction under presence of a gaseous reactant, the transport agent, the term Chemical Vapor Transport Reaction (CVT) is applied. Crystallization processes by CVT are known for both elements, intermetallics, binary and complex oxides, halides, chalcogenides, and pnictides. Even if the formation of volatile halides is a common feature of almost all vapor transport reactions, significant differences are there concerning the choice of a suitable transport agent depending on the nature of the initial solid phase. Actually, the appropriateness of transport agents for the respective transport reaction can be described in a thermodynamic way. Besides some basic principles for systematic evaluation more practical recommendations for suitable experimental conditions are given for CVT of different classes of inorganic materials. KW - Crystal growth KW - Chemical vapor transport Y1 - 2017 UR - http://onlinelibrary.wiley.com/doi/10.1002/zaac.201700055/epdf U6 - https://doi.org/10.1002/zaac.201700055 SN - 1521-3749 VL - 643 IS - 21 SP - 1295 EP - 1311 ER - TY - CHAP A1 - Nilges, Tom A1 - Schmidt, Peer A1 - Weihrich, Richard ED - Scott, Robert A. T1 - Phosphorus: The Allotropes, Stability, Synthesis, and Selected Applications T2 - Encyclopedia of Inorganic and Bioinorganic Chemistry N2 - Phosphorus, first found in the seventeenth century, played an important role in the definition of the element term by Lavoisier and thus shaped the beginning of the era of modern chemistry. It was discovered for the first time in the most unstable crystalline modification—the white phosphorus. Today, a variety of experimentally proven allotropes are known. The most common allotropes, such as black, violet, and fibrous phosphorus, are described here with respect to their synthesis, crystal structures, thermal, and thermodynamic properties. Besides, more than 50 crystalline allotropes have been predicted, and their stabilities have been estimated using quantum‐chemical methods. This way, phosphorus becomes one of the most structurally variable elements of the periodic table. In this article, some of the most reasonable and sophisticated calculations are presented. The applications of elemental phosphorus are mainly connected with its semiconducting properties. Thus, the development of current applications is strongly related to new synthesis methods for direct preparation of individual, phase pure allotropic forms of phosphorus. The past decade supplied basic results on the formation of black phosphorus and other modifications, primarily using the mineralizer concept. Related to graphene and other two‐dimensional, layered structures, phosphorene is of drastically rising interest. The pertinent modifications are characterized by corrugated arrangement of six‐membered P‐rings, where both the boat conformation and the chair conformation are known. The application of phosphorene is in a jumping evolution. Currently, phosphorene is already in use in manifold ways, including as a sensor, optical device, transistor, energy‐conversion material, and supercapacitor material. KW - Crystal growth KW - Chemical vapor transport KW - Crystal structure KW - Phosphorus KW - High-temperature Gas-balance KW - Thermal analysis KW - DFT Y1 - 2018 UR - https://onlinelibrary.wiley.com/doi/pdf/10.1002/9781119951438.eibc2643 SN - 978-1-119-95143-8 U6 - https://doi.org/10.1002/9781119951438.eibc2643 SP - 1 EP - 19 PB - John Wiley Sons CY - Hoboken, US ET - 2. Auflage ER - TY - GEN A1 - Grönke, Martin A1 - Schmidt, Peer A1 - Valldor, Martin A1 - Oswald, Steffen A1 - Wolf, Daniel A1 - Lubk, Axel A1 - Büchner, Bernd A1 - Hampel, Silke T1 - Chemical vapor growth and delamination of α-RuCl3 nanosheets down to the monolayer limit T2 - Nanoscale N2 - 2D layered honeycomb magnet α-ruthenium(III) chloride (α-RuCl3) is a promising candidate to realize a Kitaev spin model. As alteration of physical properties on the nanoscale is additionally intended, new synthesis approaches to obtain phase pure α-RuCl3 nanocrystals have been audited. Thermodynamic simulations of occurring gas phase equilibria were performed and optimization of synthesis conditions was achieved based on calculation results. Crystal growth succeeded via chemical vapor transport (CVT) in a temperature gradient of 973 K to 773 K on YSZ substrates. Single crystal sheets of high crystallinity with heights ≤ 30 nm were obtained via pure CVT. The crystal properties were characterized by means of optical and electron microscopy, AFM, SAED, micro-Raman and XPS proving their composition, morphology, crystallinity and phase-purity. A highlight of our study is the successful individualization of nanocrystals and the delamination of nanosheets on YSZ substrates down to the monolayer limit (≤ 1 nm) which was realized by means of substrate exfoliation and ultrasonication in a very reproducible way. KW - Crystal growth KW - Thermodynamic modeling KW - Chemical vapor transport KW - 2D layered compounds KW - Nanocrystals Y1 - 2018 UR - https://pubs.rsc.org/en/content/articlelanding/2018/nr/c8nr04667k#!divAbstract U6 - https://doi.org/10.1039/C8NR04667K SN - 2040-3372 VL - 10 IS - 40 SP - 19014 EP - 19022 ER - TY - GEN A1 - Poddig, Hagen A1 - Donath, Tom A1 - Gebauer, Paul A1 - Finzel, Kati A1 - Kohout, Miroslav A1 - Wu, Yuandong A1 - Schmidt, Peer A1 - Doert, Thomas T1 - Rare Earth Metal Polytellurides RETe1.8 (RE = Gd, Tb, Dy) – Directed Synthesis, Crystal and Electronic Structures, and Bonding Features T2 - Zeitschrift für Anorganische und Allgemeine Chemie N2 - Single crystals of the polytellurides RETe1.8 of gadolinium, terbium, and dysprosium were prepared by chemical vapor transport and alkali metal halide flux reactions. To determine proper synthesis conditions for the desired target composition, the binary phase diagram Gd-Te was evaluated by CalPhaD methods. The compounds are isostructural to SmTe1.8 and crystallize in space group P4/n (no. 85) with lattice parameters of a = 966.10(4), 960.00(3), and 957.33(2) pm and c = 1794.15(10), 1785.77(6), and 1779.38(5) pm for GdTe1.8, TbTe1.8 and DyTe1.8, respectively. The structures consist of puckered [RETe] double slabs and planar telluride layers composed of Te2 dumbbells and linear Te3 units in accordance with ELI-D based bonding analyses. The latter can be understood as a Te3(4–) anion. GdTe1.8 is a semiconductor with a bandgap of 0.19 eV/0.17 eV (experimental / calculated). Magnetization data confirm trivalent RE ions and indicate antiferromagnetic order at T(N) = 12 K for TbTe1.8 and T(N) = 9.8 K for DyTe1.8, whereas GdTe1.8 remains paramagnetic down to 2 K. KW - Phase diagrams KW - Crystal structure KW - Crystal growth KW - Chemical vapor transport KW - Thermodynamc modelling KW - Chalcogenides KW - Polytellurides KW - Bonding analysis Y1 - 2018 UR - https://onlinelibrary.wiley.com/doi/10.1002/zaac.201800382 U6 - https://doi.org/10.1002/zaac.201800382 SN - 1521-3749 SN - 0044-2313 VL - 644 IS - 24 SP - 1886 EP - 1896 ER - TY - GEN A1 - Grönke, Martin A1 - Pohflepp, Danny A1 - Schmidt, Peer A1 - Valldor, Martin A1 - Oswald, Steffen A1 - Wolf, Daniel A1 - Hao, Qi A1 - Steiner, Udo A1 - Büchner, Bernd A1 - Hampel, Silke T1 - Simulation and synthesis of alpha-MoCl₃ nanosheets on substrates by short time chemical vapor transport T2 - Nano-Structures & Nano-Objects N2 - Alpha-molybdenum(III) chloride (MoCl₃) belongs to layered van-der-Waals materials, which are in focus to exhibit interesting properties due to their weak chemical and magnetic interactions. Especially the structure of alpha-MoCl₃ has been discussed in terms of symmetry breaking dimerization of Mo atoms at room temperature, which might led to exotic ground states. By exploiting the 2D materials characteristics, an investigation of physical properties on the nanoscale is intended. We herein demonstrate the probably first approach to synthesize phase pure, as-grown alpha-MoCl₃ few-layer nanosheets by means of a pure short time chemical vapor transport (CVT) process. Vapor growth benefits from a one-step deposition of high crystalline alpha-MoCl₃ nanosheets without stacking faults on a substrate. Thus, mostly applied subsequent delamination, associated with the introduction of structural defects, becomes redundant. According to the CVT process thermodynamic simulations of gas phase equilibria have been performed and the synthesis conditions could be optimized based on the calculation results. By CVT the as-grown nanolayers are deposited on sapphire (Al₂O₃) substrates by applying a temperature gradient of 70 K from 743 K to 673 K. Single crystalline sheets with thicknesses ≤75 nm down to five layer (3 nm) could be obtained by using a pure CVT process. According to the deposited nanostructures we approve the desired composition, morphology, phase purity and high crystallinity by using several microscopy and spectroscopy techniques. Furthermore, we show micro-RAMAN measurements which hint at a slight increase in phonon energies for nanosheets in comparison to the corresponding bulk phase. KW - Crystal growth KW - Chemical vapor transport KW - 2D layered compounds KW - Halides Y1 - 2019 UR - https://www.sciencedirect.com/science/article/pii/S2352507X18304888?via%3Dihub#! U6 - https://doi.org/10.1016/j.nanoso.2019.100324 SN - 2352-507X IS - 19 SP - 1 EP - 7 ER - TY - GEN A1 - Grönke, Martin A1 - Arrozi, Ubed S. F. A1 - Bronkalla, Nadine A1 - Schmidt, Peer A1 - Valldor, Martin A1 - Oswald, Steffen A1 - Woodcock, Thomas G. A1 - Eckert, Victoria A1 - Hao, Qi A1 - Plüschke, Laura A1 - Lederer, Albena A1 - Nielsch, Kornelius A1 - Büchner, Bernd A1 - Kaskel, Stefan A1 - Hampel, Silke T1 - Layered α-TiCl₃: Microsheets on YSZ Substrates for Ethylene Polymerization with Enhanced Activity T2 - Chemistry of Materials N2 - The transition metal halide α-titanium(III) chloride (α-TiCl₃) is a layered two-dimensional compound and a well-established Ziegler–Natta catalyst for the polymerization of ethylene. A new synthesis technique is used to obtain thin sheets of α-TiCl₃ that show exceptional physical properties in contrast to their bulk counterparts, due to an enlarged surface-to-volume ratio. Chemical vapor transport (CVT) of α-titanium(III) chloride directly on substrates results in microsheets that exhibit an improved catalytic effect. For rational planning of synthesis conditions, thermodynamic simulations of occurring gas-phase equilibria were performed. Based on these calculation results, crystal growth was achieved by adding GaCl₃via pure short term CVT in a temperature gradient of 700–600 K on yttrium-stabilized zirconia (YSZ) substrates. Phase pure, as-grown, single crystal sheets with high crystallinity and a thickness of around 4 μm were obtained. These thin sheets of α-TiCl₃ on YSZ substrates were implemented as catalysts for the ethylene polymerization reaction. A significant improvement of catalytic activity of 16% was achieved, probably due to an increased surface-to-volume ratio. As a highlight, the as-grown microsheets were exfoliated subsequently to a thickness lower than 200 nm and an even higher catalytic activity of up to 24% was confirmed experimentally due to delamination effects. This is the first time that an improved catalytic effect of α-TiCl₃ is observed as a result of downscaling from bulk to microsheets by CVT. KW - Crystal growth KW - Chemical vapor transport KW - Thermodynamic modeling KW - 2D layered compounds KW - Halides KW - Nanocrystals (1) Y1 - 2019 UR - https://pubs.acs.org/doi/10.1021/acs.chemmater.9b01818 U6 - https://doi.org/10.1021/acs.chemmater.9b01818 VL - 31 IS - 14 SP - 5305 EP - 5313 ER - TY - GEN A1 - Grönke, Martin A1 - Buschbeck, Benjamin A1 - Schmidt, Peer A1 - Valldor, Martin A1 - Oswald, Steffen A1 - Hao, Qi A1 - Lubk, Axel A1 - Wolf, Daniel A1 - Steiner, Udo A1 - Büchner, Bernd A1 - Hampel, Silke T1 - Chromium Trihalides CrX₃(X = Cl, Br, I): Direct Deposition of Micro‐ and Nanosheets on Substrates by Chemical Vapor Transport T2 - Advanced Materials Interfaces N2 - The experimental observation of intrinsic ferromagnetism in single layered chromium trihalides CrX₃ (X = Cl, Br, I) has gained outstanding attention recently due to their possible implementation in spintronic devices. However, the reproducible preparation of highly crystalline chromium(III) halide nanolayers without stacking faults is still an experimental challenge. As chromium trihalides consist of adjacent layers with weak interlayer coupling, the preparation of ultrathin CrX₃ nanosheets directly on substrates via vapor transport proves as an advantageous synthesis technique. It is demonstrated that vapor growth of ultrathin highly crystalline CrX₃ micro‐ and nanosheets succeeds directly on yttrium stabilized zirconia substrates in a one‐step process via chemical vapor transport (CVT) in temperature gradients of 100 K (600°C → 500°C for CrCl₃ and 650°C → 550°C for CrBr₃ or CrI₃) without a need for subsequent delamination. Due to simulation results, optimization of synthesis conditions is realized and phase pure CrX₃ nanosheets with thicknesses ≤25 nm are obtained via short term CVT. The nanosheets morphology, crystallinity, and phase purity are analyzed by several techniques, including microscopy, diffraction, and spectroscopy. Furthermore, a potential subsequent delamination technique is demonstrated to give fast access to CrX₃ monolayers using the example of CrCl₃ . KW - 2D layered compounds KW - Crystal growth KW - Chemical vapor transport KW - Halides KW - Nanocrystals KW - Thermodynamic modeling Y1 - 2019 UR - https://onlinelibrary.wiley.com/doi/epdf/10.1002/admi.201901410 U6 - https://doi.org/10.1002/admi.201901410 SN - 2196-7350 VL - 6 IS - 24 ER - TY - GEN A1 - Heinemann, Robert A1 - Schmidt, Peer T1 - Crystal Growth by Chemical Vapor Transport: Process Screening by Complementary Modeling and Experiment T2 - Crystal Growth & Design N2 - Despite chemical vapor transport (CVT) being a widely used method for crystal growth of inorganic substances, detailed mechanistic studies on the course of the crystallization process are rather few. In this study, an elaborated experimental screening run combined with sophisticated modeling of the respective heterogeneous equilibria is presented: Crystal growth of germanium by vapor transport with the addition of iodine has been chosen as a model system for validation of the applied method spectrum. In order to record the course and the interplay of heterogeneous equilibrium and non-equilibrium reactions in the system Ge–I, the experimental setup of high-temperature gas-balance (HTGB) is applied. Additionally, the observed evaporation processes are compared with saturation curves of corresponding volatile substances and, thus, can be assigned to individual species within the system. In this experimental screening, a phase sequence means to examine how the condensed phases undergo iodine depletion and how the gaseous phase undergoes a germanium enrichment when the temperature is increased. This phase screening combined with annealing experiments in the course of the phase sequence helps to analyze stepwise non-equilibrium products and to identify the characteristic species. Subsequently, for the evaluation of the composition of the gaseous phase, and for the deduction of the vapor transport mechanism, thermodynamic modeling by the CalPhaD method is performed. For the reference system, it is confirmed that iodine does not act as the transport agent. Instead, GeI4 is responsible for the volatilization of germanium, forming GeI2. Nevertheless, investigations clearly illustrate how GeI4 forms naturally in the phase sequence in the system Ge–I, which makes direct addition of it unnecessary. The recommended temperature range for vapor transport of germanium spans from 460 to 800 °C. Modeling shows that migration rates for germanium reaches a maximum at a mean temperature between 540 and 550 °C. Finally, vapor transport experiments were performed from 565 to 515 °C and from 690 to 590 °C. By increasing the deposition temperature, a slight decrease of the migration rate was observed, though a positive impact on the crystal’s morphology was also found. KW - Crystal growth KW - Chemical vapor transport KW - High-temperature Gas-balance KW - Thermodynamic modeling KW - Phase barogram KW - Germanium Y1 - 2020 UR - https://pubs.acs.org/doi/abs/10.1021/acs.cgd.0c00679 U6 - https://doi.org/10.1021/acs.cgd.0c00679 SN - 1528-7505 SN - 1528-7483 VL - 20 IS - 9 SP - 5986 EP - 6000 ER - TY - GEN A1 - Hansen, Felix A1 - Wels, Martin A1 - Froeschke, Samuel A1 - Popov, Alexey A1 - Wolf, Daniel A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Thermodynamic Evaluation and Chemical Vapor Transport of Few-Layer WTe2 T2 - Crystal Growth and Design N2 - Tungsten telluride WTe2 is the sole candidate of a group of two-dimensional layered transition metal dichalcogenides (TMDCs) MX2 with a thermodynamically stable 1T′-structure at room temperature. The binary system W/Te was audited with respect to a rational approach of planning and realization of a bottom-up synthesis of WTe2 nanostructures. Thus, the parameters of the synthesis via chemical vapor transports (CVT) were derived by thermodynamic simulations of the reaction pathway according to the Calphad method. Reflecting on the peritectic melting behavior at 1020 °C, the values of ΔfHm° (298 K) = −26.5 kJ·mol−1 and Sm° (298 K) = 132 J·mol−1 ·K−1 have been obtained. According to modeling, crystal growth by short time vapor transport is reasonable under the addition of bromine or TeBr4 in the temperature range between 650 and 750 °C. Experimental implementation of crystal growth of WTe2 nanosheets succeeded in a temperature gradient from 725 to 675 °C on yttria-stabilized zirconia (YSZ) (111) substrates, observing the deposition of single crystal sheets of high crystallinity with thicknesses of 15−20 nm (∼20−30 layers). The high crystallinity, pristine morphology, and overall quality of the deposited nanosheets is shown by means of atomic resolution transmission electron microscopy, selected area electron diffraction (SAED), and atomic force microscopy as well as profound double-polarized Raman spectroscopy. KW - Crystal growth KW - Chemical vapor transport KW - Thermodynamic modeling KW - 2D layered compounds KW - Chalcogenides KW - Phase diagram Y1 - 2020 UR - https://pubs.acs.org/doi/abs/10.1021/acs.cgd.0c01004 U6 - https://doi.org/10.1021/acs.cgd.0c01004 SN - 1528-7505 VL - 20 IS - 11 SP - 7341 EP - 7349 ER - TY - GEN A1 - Froeschke, Samuel A1 - Wolf, Daniel A1 - Hantusch, Martin A1 - Giebeler, Lars A1 - Wels, Martin A1 - Gräßler, Nico A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Synthesis of micro- and nanosheets of CrCl3–RuCl3 solid solution by chemical vapour transport T2 - Nanoscale N2 - Solid solutions of 2D transition metal trihalides are rapidly growing in interest for the search for new 2D materials with novel properties at nanoscale dimensions. In this regard, we present a synthesis method for the Cr1−xRuxCl3 solid solution and describe the behaviour of the unit cell parameters over the whole composition range, which in general follows Vegard's law in the range of a = 5.958(6)CrCl3 … 5.9731(5)RuCl3 Å, b = 10.3328(20)CrCl3 … 10.34606(21)RuCl3 Å, c = 6.110(5)CrCl3 … 6.0385(5)RuCl3 Å and β = 108.522(15)CrCl3 … 108.8314(14)RuCl3 °. The synthesized solid solution powder was subsequently used to deposit micro- and nanosheets directly on a substrate by applying chemical vapour transport in a temperature gradient of 575 °C → 525 °C for 2 h and 650 °C → 600 °C for 0.5 h as a bottom-up approach without the need for an external transport agent. The observed chromium chloride enrichment of the deposited crystals is predicted by thermodynamic simulation. The results allow for a nanostructure synthesis of this solid solution with a predictable composition down to about 30 nm in height and lateral size of several μm. When applying a quick consecutive delamination step, it is possible to obtain few- and monolayer structures, which could be used for further studies of downscaling effects for the CrCl3–RuCl3 solid solution. X-ray photoelectron spectroscopy, transmission electron microscopy and Raman spectroscopy were used to confirm the purity and quality of the synthesized crystals. KW - Crystal growth KW - Chemical vapor transport KW - Thermal analysis KW - Thermodynamic modeling KW - 2D layered compounds Y1 - 2022 UR - https://pubs.rsc.org/en/content/articlelanding/2022/NR/D2NR01366E U6 - https://doi.org/10.1039/D2NR01366E SN - 2040-3372 VL - 29 IS - 14 SP - 10483 EP - 10492 ER - TY - GEN A1 - Hansen, Felix A1 - Fucke, Rico A1 - Charvin, Titouan A1 - Froeschke, Samuel A1 - Wolf, Daniel A1 - Giraud, Romain A1 - Dufouleur, Joseph A1 - Gräßler, Nico A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Direct Deposition of (BixSb1–x)2Te3 Nanosheets on Si/SiO2 Substrates by Chemical Vapor Transport T2 - Crystal growth & design N2 - The tellurides of bismuth and antimony (Bi2Te3 and Sb2Te3) are prominent members of the V2VI3 material family that exhibit promising topological properties. We provide a method for the rational synthesis of mixed crystals of these materials ((BixSb1–x)2Te3 with x = 0.1, ..., 0.9) by means of a bottom-up chemical vapor transport (CVT) approach. Thermodynamic calculations showed the synthesis to be possible in the temperature range of 390–560 °C without significant enrichment of either component and without adding a transport agent. The starting materials were synthesized and verified by X-ray diffraction (XRD). Optimization experiments showed the ideal conditions for nanosheet synthesis to be T2 = 560 °C, T1 = 390 °C with a reaction time of t = 36 h. Crystals with heights of down to 12 nm (12 quintuple layers) were synthesized and analyzed by means of scanning electron microscopy, energy-dispersive X-ray spectrometry, and atomic force microscopy. High-resolution transmission electron microscopy confirmed the R3̅m crystal structure, high crystallinity, and overall quality of the synthesized (BixSb1–x)2Te3 nanosheets. Magnetotransport measurements revealed that such ternary compounds can have a significantly reduced carrier density compared to the binary parent compounds. KW - Crystal growth KW - Chemical vapor transport KW - Thermodynamic modeling KW - Chalcogenides Y1 - 2022 UR - https://pubs.acs.org/doi/abs/10.1021/acs.cgd.1c01446 U6 - https://doi.org/10.1021/acs.cgd.1c01446 SN - 1528-7505 SN - 1528-7483 VL - 22 IS - 4 SP - 2354 EP - 2363 ER - TY - GEN A1 - Froeschke, Samuel A1 - Yasmen, Nadia A1 - Popov, Alexey A1 - Schiemenz, Sandra A1 - Wolf, Daniel A1 - Giebeler, Lars A1 - Hantusch, Martin A1 - Gräßler, Nico A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Controlled Nanoplatelet Deposition of 2D Chromium Trihalide Solid Solutions T2 - Chemistry of Materials N2 - The two-dimensional (2D) chromium trihalides CrCl3, CrBr3, and CrI3 are most famous for their exotic magnetic properties when their crystals get downscaled to nanometer dimensions. One way to tune the properties of such materials and to further increase their potential utility, e.g., in spintronics, is the formation of solid solutions. Here, we present a detailed theoretical and experimental study on the synthesis and nanoplatelet growth of CrBrxCl3–x and CrBrxI3–x solid solutions. Phase pure powder was obtained by tempering the respective parent compounds at 600 and 550 °C, using additional iodine in the case of CrBrxI3–x. The dominant stacking order changes at x = 1.8 for CrBrxCl3–x while remaining similar to CrI3 for the whole CrBrxI3–x series. A consecutive chemical vapor transport from 575 → 525 °C for 2 h (CrBrxCl3–x) or 600 → 550 °C for 3 h with 0.1 mmol additional iodine (CrBrxI3–x) resulted in the deposition of high-quality nanoplatelets on a substrate with only several nanometers in height. The composition can be controlled by the choice of the starting material, since only small shifts in the anion ratio occur during the transport. The deposited CrBrxCl3–x nanoplatelets can then be easily delaminated by ultrasonication in ethanol to reduce the height even further to few-layer dimensions. These nanoplatelets could potentially be used to investigate the property changes (e.g., in terms of magnetic response) for the downscaling of these solid solutions. We further demonstrate the quality of the deposited material by transmission electron microscopy, selected area electron diffraction, and X-ray photoelectron spectroscopy. Raman spectroscopy of the solid solution series reveals a complex evolution of vibrational modes. Photoluminescence measurements on solid solution samples show emission peaks in the near-infrared energy range with the specific energy and intensity being composition and temperature dependent. KW - 2D layered compounds KW - Chemical vapor transport KW - Crystal growth KW - Crystal structure KW - Halides KW - Thermodynamic modeling Y1 - 2023 UR - https://pubs.acs.org/doi/full/10.1021/acs.chemmater.2c03785 U6 - https://doi.org/10.1021/acs.chemmater.2c03785 SN - 1520-5002 SN - 0897-4756 VL - 35 IS - 11 SP - 4136 EP - 4148 ER - TY - GEN A1 - Froeschke, Samuel A1 - Schroth, Karl-Georg A1 - Steiner, Udo A1 - Popov, Alexey A1 - Schiemenz, Sandra A1 - Wolf, Daniel A1 - Giebeler, Lars A1 - Gräßler, Nico A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Understanding the chemistry of 2D rhodium trihalide solid solutions: tuning of optical properties and nanocrystal deposition T2 - 2D Materials N2 - In the search for novel 2D materials with potentially valuable properties, such as a tunable band gap for optoelectronic or catalytic applications, solid solutions hold the potential to significantly expand the inventory of available 2D nanomaterials. In this study, we present for the first time the synthesis of such 2D rhodium trihalide solid solutions: RhBrxCl3−x and RhBrxI3−x. We use thermodynamic simulations and simultaneous thermal analysis to predict conditions for their rational synthesis and to investigate suitable chemical vapor transport (CVT) parameters for these solid solutions. The evolution of the lattice parameters was investigated by powder x-ray diffraction, showing an isostructural relationship of the synthesized compounds and only minor deviation from Vegard's law. The optical band gap of these materials can be tuned in an energy range from 1.5 eV (RhCl3) to 1.2 eV (RhI3) by choosing the composition of the solid solution, while the samples also exhibit photoluminescence in similar energy ranges. Ultimately, the successful deposition of bulk as well as ultrathin 2D nanocrystals of RhBrxCl3−x by CVT from 925 °C to 850 °C is shown, where the composition of the deposited crystals is precisely controlled by the choice of the starting composition and the initial amount of material. The high quality of the obtained nanocrystals is confirmed by atomic force microscopy, high resolution transmission electron microscopy and selected area electron diffraction. For RhBrxI3−x, the CVT from 900 °C to 825 °C is more difficult and has only been practically demonstrated for an exemplary case. According to the observed properties, these novel solid solutions and nanocrystals show a great potential for an application in optoelectronic devices. KW - Crystal growth KW - Chemical vapor transport KW - Crystal structure KW - Thermodynamic modeling KW - 2D layered compounds KW - Halides Y1 - 2023 UR - https://iopscience.iop.org/article/10.1088/2053-1583/acd012 U6 - https://doi.org/10.1088/2053-1583/acd012 SN - 2053-1583 VL - 10 IS - 3 SP - 1 EP - 12 ER - TY - GEN A1 - Vinokurova, Ekaterina A1 - Knorr, Monika A1 - Efimova, Anastasia A1 - Ovchinnikov, Alexander A1 - Schmidt, Peer A1 - Büchner, Bernd A1 - Isaeva, Anna A1 - Roslova, Maria T1 - Microstructural evolution of layered K-doped RuCl3 during annealing traced by thermogravimetric analysis and 3D electron diffraction T2 - Zeitschrift für Anorgische und Allgemeine Chemie N2 - Nanoscale phase separation was induced in the K-doped RuCl3 van der Waals material by annealing, and studied with the goal to find a natural design strategy for the formation of two-dimensional architectures as an alternative to the costly and time-consuming experimental artificial growth methods. Phase conversion was traced by means of thermogravimetric analysis combined with mass spectrometry. The local crystal structure of co-existing K3Ru2Cl9 domains with the sizes of about 100 nm was solved by 3D electron diffraction. KW - 2D layered compounds KW - Chemical vapor transport KW - Crystal growth KW - Crystal structure KW - Halides KW - Thermal analysis Y1 - 2023 UR - https://onlinelibrary.wiley.com/doi/full/10.1002/zaac.202300141 U6 - https://doi.org/10.1002/zaac.202300141 SN - 0044-2313 SN - 1521-3749 VL - 649 IS - 19 SP - 1 EP - 8 ER - TY - GEN A1 - Putze, Philipp A1 - Ritschel, Tobias A1 - Chekhonin, Paul A1 - Geck, Jochen A1 - Wolf, Daniel A1 - Popov, Alexey A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Creating chirality in WSe₂ through screw dislocations by chemical vapor transport T2 - Nanoscale horizons N2 - Screw dislocation-driven nanostructures of two-dimensional transition metal dichalcogenides (2D TMDs) can feature chirality that enables prominent asymmetric optical properties. One of the outstanding representatives is WSe₂ as it can exhibit intriguing new size and shape-dependent chemical and physical properties compared to its bulk counterpart. Crystal growth control in nanostructures with screw dislocation-driven growth is central for exploiting their structure-related properties. However, bottom-up syntheses of 2D TMDs usually contain ‘trial and error’ approaches. Here we report on the rational synthesis planning and realizing for the binary system W:Se to achieve chirality in nano-scale crystals by chemical vapor transport (CVT). For that purpose, key parameters were modelled based on thermodynamic datasets. Thus, crystal growth by CVT under addition of SeCl4 succeeds for right-handed spiral nanocrystals from 850 °C to 800 °C with a dwell time of 60 min, while left-handed spirals are obtained from 915 °C to 860 °C. Surface-fused SiO₂ nanoparticles on an Si(100) substrate served as potential nucleation points. Chirality of screwed WSe₂ was unprecedentedly investigated by circular-polarized Raman Spectroscopy and showed an intensity increase of the E¹₂g mode of 29% and 15% for right and left-handed spirals, respectively. Pyramid-like WSe2 analyzed by atomic force microscopy exhibits step heights of around 10 nm. Electron backscatter diffraction patterns reveal a convex curvature for WSe₂ with the curvature radii determined as Rx = (270 ± 32) μm and Ry = (141 ± 9) μm, respectively. KW - Chrystal growth KW - Chemical vapor transport KW - Thermodynamic modeling KW - 2D layered compounds KW - Chalcogenides Y1 - 2025 UR - https://pubs.rsc.org/en/content/articlelanding/2025/nh/d4nh00567h U6 - https://doi.org/10.1039/D4NH00567H VL - 10 IS - 5 SP - 944 EP - 956 PB - Royal Society of Chemistry CY - Cambridge ER - TY - GEN A1 - Putze, Philipp A1 - Wolf, Daniel A1 - Chekhonin, Paul A1 - Popov, Alexey A1 - Ritschel, Tobias A1 - Lubk, Axel A1 - Geck, Jochen A1 - Büchner, Bernd A1 - Schmidt, Peer A1 - Hampel, Silke T1 - Twisted and screw dislocation-driven growth of MoSe₂ nanostructures by chemical vapor transport T2 - Nano research N2 - Twisted multilayers of two-dimensional materials attract widespread research interest due to their intriguing electronic and optical properties related to their chiral symmetry breaking and Moiré effects. The two-dimensional transition metal dichalcogenide MoSe₂ is a particular promising material for twisted multilayers, capable of sustaining Moiré excitons. Here, we report on a rational bottom-up synthesis approach for twisted MoSe₂ flakes by chemical vapor transport (CVT). Screw dislocation-driven growth was forced by surface-fused SiO₂ nanoparticles on the substrates that serve as potential nucleation points in low supersaturation condition. Thus, crystal growth by in-situ CVT under addition of MoCl₅ leads to bulk 2H-MoSe₂ in a temperature gradient from 900 °C to 820 °C with a dwell time of 96 h. Hexagonally shaped 2H-MoSe₂ flakes were grown from 710 °C to 685 °C with a dwell time of 30 min on SiO₂@Al₂O₃(0001) substrates. Electron backscatter diffraction as well as electron microscopy reveals the screw dislocation-driven growth of triangular 3R-MoSe₂ with individual step heights between 0.9 nm and 2.9 nm on SiO₂@Si(100) under the same conditions. Finally, twisted MoSe₂ flakes exhibiting a twist angle of 19° with respect to the [010] zone axis could be synthesized. KW - Chrystal growth KW - Chemical vapor transport KW - Thermodynamic modeling KW - 2D layered compounds KW - Chalcogenides Y1 - 2025 UR - https://www.sciopen.com/article/10.26599/NR.2025.94908020 U6 - https://doi.org/10.26599/NR.2025.94908020 SN - 1998-0000 IS - 18 SP - 1 EP - 23 PB - Tsinghua University Press ER -