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Volume 20, IOCPC 2026
 
 
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Chem. Proc., 2026, IOCC 2026

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Number of Papers: 7
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12 pages, 9659 KB  
Proceeding Paper
Solubility of Metals in Semiconductors: Insights from Iron Silicide
by Sopheap Sam and Hiroshi Nakatsugawa
Chem. Proc. 2026, 21(1), 1; https://doi.org/10.3390/chemproc2026021001 - 6 Aug 2026
Viewed by 563
Abstract
Metal doping is an effective strategy for tuning and improving the transport properties of semiconductors such as iron silicide. However, when the dopant concentration exceeds its solubility limit, secondary metallic phases can form, degrading the desired semiconductor properties and overall material performance. Therefore, [...] Read more.
Metal doping is an effective strategy for tuning and improving the transport properties of semiconductors such as iron silicide. However, when the dopant concentration exceeds its solubility limit, secondary metallic phases can form, degrading the desired semiconductor properties and overall material performance. Therefore, a clear understanding of dopant solubility limits and phase stability is important for optimizing material properties. Here, we investigate the solid solution behaviors of metals in polycrystalline Fe1−xMxSi2 (M = Mn, Co, and Ni) systems. The results show that increasing dopant concentration promotes the formation of metallic secondary phases and limits dopant incorporation into the β matrix. The estimated solubility limits are approximately 6.3% for Mn, 8.8% for Co, and 1.0% for Ni. Beyond the iron silicide system, the combined methodology provides a practical approach for determining dopant solubility in semiconductors, where local compositional saturation may occur before substantial changes in bulk phase fractions become apparent. Full article
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5 pages, 1087 KB  
Proceeding Paper
Geometry of the Adsorption Sites in Metal Nanoparticles and Surfaces
by Constantinos D. Zeinalipour-Yazdi
Chem. Proc. 2026, 21(1), 2; https://doi.org/10.3390/chemproc2026021002 - 14 Aug 2026
Viewed by 143
Abstract
Despite decades of surface science research, there is a lack of an universal approach to define the adsorption geometry in catalysis on metal nanoparticles and surfaces. The unified framework introduced in this work allows the comparison of binding sites across different facets and [...] Read more.
Despite decades of surface science research, there is a lack of an universal approach to define the adsorption geometry in catalysis on metal nanoparticles and surfaces. The unified framework introduced in this work allows the comparison of binding sites across different facets and particle-size metals, including stepped surfaces, adatoms and surface vacancies. In this study, we identify 18 adsorption sites on metal nanoparticles and surfaces that have either a face-centred cubic (FCC) or hexagonal close-packed (HCP) structure. Most metals in the periodic table have these structures and we determined the adsorption site geometry on a nanoparticle using a geometric approach with physical magnetic ball-and-stick models. These geometric models include the existence of an octahedral or tetrahedral hole beneath the adsorption site, as these can affect the adsorption site strengths of adsorbates. Furthermore, these adsorption sites are a combination of three-fold hollows and four-fold hollows, which are adsorption sites known to activate diatomic molecules (e.g., N2 and CO). In addition, adsorption of large-molecular-weight adsorbates can be defined on these sites as they provide multiple contact points in contrast to the typical four-fold hollow, three-fold hollow, and bridge and atop adsorption sites used in heterogeneous catalysis. We find that there are nine geometrically distinct adsorption site topologies composed of square (i.e., 100) and triangular (i.e., 111) motifs. These adsorption site topologies, when combined with a characteristic zeta angle (ζ), result in 18 distinct adsorption site geometries that can be found on metal nanoparticles and surfaces. A systematic naming system for these adsorption sites is provided that defines the adsorption site geometry explicitly. Using this approach, we find that there are five different types of B5 sites, an adsorption site that has been previously found to activate dinitrogen on ruthenium for the ammonia synthesis reaction. Full article
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18 pages, 4062 KB  
Proceeding Paper
Formation and Crystallization Behavior of a New Organic–Inorganic Hybrid Crystalline Compound in the CA(CLO3)2·2CO(NH2)2–CH2CLCOOH·(C2H4OH)3N–H2O System
by Ruzimurod Jurayev, Kakhramon Turayev, Bekzod Eshkulov and Akhat Togasharov
Chem. Proc. 2026, 21(1), 3; https://doi.org/10.3390/chemproc2026021003 - 24 Aug 2026
Viewed by 217
Abstract
Organic–inorganic hybrid crystalline materials formed in multicomponent aqueous systems are of interest because their phase behavior and physicochemical properties can be controlled by composition and crystallization conditions. In this study, the phase equilibria and crystallization behavior of the ternary aqueous Ca(ClO3) [...] Read more.
Organic–inorganic hybrid crystalline materials formed in multicomponent aqueous systems are of interest because their phase behavior and physicochemical properties can be controlled by composition and crystallization conditions. In this study, the phase equilibria and crystallization behavior of the ternary aqueous Ca(ClO3)2·2CO(NH2)2–CH2ClCOOH·(C2H4OH)3N–H2O system were investigated over the temperature range of −24 to 60 °C using the visual-polythermal method. Experimental data obtained for the two boundary binary subsystems and eight internal sections were used to construct the polythermal phase diagram. The diagram revealed distinct crystallization fields corresponding to ice, Ca(ClO3)2·2CO(NH2)2·2H2O, CH2ClCOOH·(C2H4OH)3N, and a separate crystallization region associated with a previously unreported crystalline phase with the proposed composition ClCH2COOH·Ca(ClO3)2·(C2H4OH)3N. The solid phase was isolated from its crystallization region, washed with cold distilled water, dried to constant mass, and characterized by complementary Fourier-transform infrared spectroscopy (FT-IR), scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy (SEM–EDS), thermogravimetric analysis, derivative thermogravimetry, and differential scanning calorimetry (TG–DTG–DSC), and powder X-ray diffraction (PXRD). The experimentally determined Ca2+ and ClO3 contents were reasonably consistent with the proposed composition, while FT-IR spectroscopy revealed characteristic chlorate vibrations and changes in the vibrational environment of the organic component. SEM showed predominantly prismatic and plate-like crystalline morphologies, and EDS confirmed the presence of Ca, Cl, O, C, and N. Thermal analysis demonstrated multistage decomposition, with comparatively good thermal stability below approximately 150 °C. PXRD revealed a diffraction fingerprint distinct from those of the starting components and the corresponding physical mixture. Preliminary indexing of 19 principal reflections was consistent with a tetragonal candidate lattice with a = b = 7.7411(5) Å, c = 24.7182(10) Å, V = 1481.2(5) Å3, and M20 ≈ 23.0. The crystallographic analysis is considered preliminary because the diffraction profile was reconstructed from the available pattern and was not subjected to complete structure refinement. Overall, the combined phase-equilibrium, compositional, spectroscopic, morphological, thermal, and diffraction data support the isolation of a distinct organic–inorganic crystalline phase with the proposed composition. Full article
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7 pages, 4166 KB  
Proceeding Paper
The Influence of High Temperature on X-Ray Luminescence Performance of BGO and BaF2 Scintillation Crystals
by Theodoros Tryfonidis, Dionysios Linardatos, Vasileios Ntoupis, George Saatsakis, Ioannis Valais, Nektarios Kalyvas, George Fountos, Ioannis Kandarakis and Christos Michail
Chem. Proc. 2026, 21(1), 4; https://doi.org/10.3390/chemproc2026021004 - 28 Aug 2026
Viewed by 225
Abstract
This study examines the luminescence performance of two single-crystal scintillators under X-ray excitation, as a function of temperature. Two identical cubic samples of bismuth germanate (Bi4Ge3O12-BGO) and barium fluoride (BaF2) crystals are irradiated by a [...] Read more.
This study examines the luminescence performance of two single-crystal scintillators under X-ray excitation, as a function of temperature. Two identical cubic samples of bismuth germanate (Bi4Ge3O12-BGO) and barium fluoride (BaF2) crystals are irradiated by a medical-type X-ray source, and their luminescence output is collected and measured while they are heated from room temperature up to 174 °C. The luminescence efficiencies of BGO and BaF2 scintillators decreased by 87.5% and 79.48%, respectively, with increasing temperature. BGO showed higher luminescence efficiency results in most of the examined temperature range; however, BaF2 minimized the differences at temperatures approaching 174 °C. The combination of economic accessibility and thermal performance at higher temperatures renders BaF2 a good choice for harsh environments and large-scale applications where budget and durability are as critical as performance. Full article
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7 pages, 1134 KB  
Proceeding Paper
Tunable Low Thermal Expansion in Calcite-Type FeBO3 and CrBO3 Borates
by Maxim D. Kuznetsov, Almaz L. Zinnatullin, Yaroslav P. Biryukov, Yulia S. Gokhfeld, Natalia V. Kazak, Maria G. Krzhizhanovskaya, Farit G. Vagizov and Rimma S. Bubnova
Chem. Proc. 2026, 21(1), 5; https://doi.org/10.3390/chemproc2026021005 - 11 Sep 2026
Viewed by 159
Abstract
We report the results of ab initio calculations of the lattice parameters and thermal expansion coefficients α(T) of calcite-type FeBO3 and CrBO3 borates. The calculated parameters were complemented by experimental data for these borates. Other thermodynamic properties, namely the [...] Read more.
We report the results of ab initio calculations of the lattice parameters and thermal expansion coefficients α(T) of calcite-type FeBO3 and CrBO3 borates. The calculated parameters were complemented by experimental data for these borates. Other thermodynamic properties, namely the isochoric heat capacity CV, the Debye temperature θD, and the Grüneisen parameter γ, were also calculated. The calculations were performed using two approaches. The first uses the quasi-harmonic Debye model, which provides thermodynamic properties from elastic constants via the Debye–Grüneisen formalism. In the second approach, thermodynamic properties were obtained based on the calculated phonon density of states. Full article
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8 pages, 11580 KB  
Proceeding Paper
Fabrication and Characterization of Lanthanoid-Doped Perovskite Solar Cells
by Ryushi Nakamura, Atsushi Suzuki, Takeo Oku, Tomoharu Tachikawa and Sakiko Fukunishi
Chem. Proc. 2026, 21(1), 6; https://doi.org/10.3390/chemproc2026021006 - 16 Sep 2026
Viewed by 141
Abstract
Perovskite solar cells (PSCs) are promising photovoltaic devices, but their practical application is limited by structural instability and ion migration. This study investigates the effects of Gd incorporation on MA0.75FA0.25PbI3 using optical characterization and first-principles calculations. Optical microscopy [...] Read more.
Perovskite solar cells (PSCs) are promising photovoltaic devices, but their practical application is limited by structural instability and ion migration. This study investigates the effects of Gd incorporation on MA0.75FA0.25PbI3 using optical characterization and first-principles calculations. Optical microscopy revealed changes in film morphology, while UV–vis spectroscopy showed enhanced near-infrared absorption without a significant change in the optical bandgap. Density functional theory indicated bandgap narrowing due to Gd-induced lattice distortion. Furthermore, Born–Oppenheimer molecular dynamics and Car–Parrinello molecular dynamics simulations revealed increased atomic diffusion, higher enthalpy, and enhanced lattice fluctuations. These results demonstrate that Gd modifies the electronic structure and lattice dynamics of perovskite materials. Full article
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5 pages, 437 KB  
Proceeding Paper
Organoboronic Acids as Co-Formers in Pharmaceutical Crystal Engineering
by Ventsislav Dyulgerov and Mariya Georgieva
Chem. Proc. 2026, 21(1), 7; https://doi.org/10.3390/chemproc2026021007 - 17 Sep 2026
Viewed by 86
Abstract
This study presents a structural screening and molecular electrostatic potential (MEP) computational analysis of various organoboronic acids as effective co-formers in pharmaceutical crystal engineering. The strong predictability of dimeric B(OH)2 homosynthons allows for precise control of molecular self-assembly within the crystal structure. [...] Read more.
This study presents a structural screening and molecular electrostatic potential (MEP) computational analysis of various organoboronic acids as effective co-formers in pharmaceutical crystal engineering. The strong predictability of dimeric B(OH)2 homosynthons allows for precise control of molecular self-assembly within the crystal structure. Concurrently, the presence of the boron atom imparts significant biomedical importance to these systems due to its documented efficacy in boron neutron capture therapy (BNCT) and non-enzymatic diagnostic glucose sensors for diabetes management. By developing multi-component co-crystals, boronic acids play a key role in improving critical pharmaceutical parameters, such as aqueous solubility, bioavailability, and overall drug absorption. In this work, we analyze their binding behavior with a diverse array of active pharmaceutical ingredients (APIs) through the lens of various xanthine derivatives (caffeine and theophylline) and nitrofurazone. The successful co-crystallization with these molecules demonstrates the broad compatibility of boronic structures. Conversely, despite highly favorable theoretical predictions for donor–acceptor compatibility, systematic laboratory screening revealed that co-crystallization with other well-known APIs, such as paracetamol and amikacin, fails, leading exclusively to the isolation of the unreacted starting materials. Therefore, by comparing successful structures and collecting data from the resulting negative outcomes, this study provides a systematic approach for the evaluation and selection of future co-formers. Full article
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