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26 pages, 3094 KB  
Article
Relaxation Polyamorphism of Rosuvastatin and Physicochemical Characterisation of a Rosuvastatin–Carvedilol Co-Amorphous System
by Agata Olszewska, Maria Brycka, Anita Umerska, Lidia Tajber, Marek Pyda and Marcin Skotnicki
Pharmaceutics 2026, 18(9), 1076; https://doi.org/10.3390/pharmaceutics18091076 - 27 Aug 2026
Viewed by 386
Abstract
Objective: In this study, the solid-state properties of two amorphous forms of rosuvastatin calcium (ROS) and co-amorphous systems of rosuvastatin with carvedilol (CAR) were investigated. Methods: The studied systems were investigated using TGA, DSC, TMDSC, PXRD, SAXS, SSNMR, and DVS. Results [...] Read more.
Objective: In this study, the solid-state properties of two amorphous forms of rosuvastatin calcium (ROS) and co-amorphous systems of rosuvastatin with carvedilol (CAR) were investigated. Methods: The studied systems were investigated using TGA, DSC, TMDSC, PXRD, SAXS, SSNMR, and DVS. Results: DSC, TMDSC and SAXS revealed subtle differences between as-received ROS (ROS AR) and freshly prepared amorphous ROS (ROS AM), providing evidence of relaxation polyamorphism. Analysis of the scanning-rate dependence of the glass transition temperature classified ROS as a fragile glass former. Water sorption studies of ROS AR using Brunauer–Emmett–Teller analysis, the Guggenheim–Anderson–de Boer equation, and Young–Nelson models indicated a moderate specific surface area and multilayer adsorption, with water binding both at the surface and within the bulk. Co-amorphous CAR–ROS systems in various molar ratios exhibited single glass transitions, confirming the formation of homogenous amorphous phases. Negative deviations from the Couchman–Karasz equation indicated non-ideal mixing behaviour. Physical ageing studies showed high stability of the ROS AM and CAR-ROS 1:1 co-amorphous system, which remained amorphous after three years of storage. Conclusions: Overall, ROS forms stable amorphous and co-amorphous systems with CAR, exhibiting favourable miscibility, structural stability, and potential for application in fixed-dose combination formulations. Full article
(This article belongs to the Special Issue Advances in Amorphous Solid Dispersions)
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33 pages, 18246 KB  
Article
Impact of Post-Annealing on the Water Splitting Performance of Polymeric Carbon Nitride: The Role of Hydrogen Bonds
by L. Florentino-Madiedo, M. F. Vega, N. Rodríguez and C. Barriocanal
Catalysts 2026, 16(2), 184; https://doi.org/10.3390/catal16020184 - 12 Feb 2026
Cited by 2 | Viewed by 1362
Abstract
Post-annealing treatments constitute a simple and cost-effective strategy to tailor the structure and photocatalytic performance of polymeric carbon nitride (PCN). In this work, PCNs synthesized from melamine and urea were subjected to post-annealing at 580 °C under air and CO2 atmospheres to [...] Read more.
Post-annealing treatments constitute a simple and cost-effective strategy to tailor the structure and photocatalytic performance of polymeric carbon nitride (PCN). In this work, PCNs synthesized from melamine and urea were subjected to post-annealing at 580 °C under air and CO2 atmospheres to elucidate the role of hydrogen bonding, as well as other structural modifications induced by oxidizing atmospheres, on photocatalytic water splitting. Comprehensive structural, chemical, and textural characterization (XRD, FTIR spectroscopy, XPS, SSNMR, HRTEM, BET, TGA, and UV–Vis DRS) reveals that post-annealing induces markedly different effects depending on the precursor. For melamine-derived PCN, the treatment selectively disrupts hydrogen bonds between melon strands without introducing nitrogen vacancies, amorphization, or framework shortening. This structural rearrangement increases surface area, reduces particle size, slightly widens the band gap, and enhances water–framework interactions, resulting in a twofold improvement in the hydrogen evolution rate (HER), reaching ~3300 µmol h−1 g·cat−1 under visible-light irradiation. In contrast, urea-derived PCN undergoes only minor structural modifications, including slight exfoliation and possible nitrogen deficiency, which do not translate into a measurable enhancement of photocatalytic activity. These results demonstrate that selective hydrogen-bond disruption is a key factor governing charge transport and photocatalytic efficiency in PCN. Importantly, the optimized melamine-derived PCN achieves HER values comparable to those of urea-derived PCN while maintaining a substantially higher synthesis yield, highlighting its potential for scalable solar hydrogen production. Full article
(This article belongs to the Special Issue Advanced Photo/Electrocatalysts for Environmental Purification)
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13 pages, 1172 KB  
Article
Study on the Influence of Composition Differences in Heavy Oil Components on In-Situ Combustion Coking Performance
by Qingchun Meng, Qingqiao Zeng, Yuying Li, Xi Huang, Yong Guo and Xusheng Wang
Processes 2026, 14(1), 123; https://doi.org/10.3390/pr14010123 - 29 Dec 2025
Cited by 1 | Viewed by 567
Abstract
This study investigates coke formation, structure, and combustion behaviors in paraffin-based Menggulin and naphthenic-based Xinjiang heavy oils under simulated in-situ combustion (ISC) conditions (350 °C, 450 °C), utilizing GC-MS, SEM, 13C ss-NMR, and TG-DSC. The results indicate that the crude oil composition [...] Read more.
This study investigates coke formation, structure, and combustion behaviors in paraffin-based Menggulin and naphthenic-based Xinjiang heavy oils under simulated in-situ combustion (ISC) conditions (350 °C, 450 °C), utilizing GC-MS, SEM, 13C ss-NMR, and TG-DSC. The results indicate that the crude oil composition determines the coking mechanisms: Xinjiang oil, rich in cyclic hydrocarbons and O/N/S heteroatoms, forms high-yield, compact, sheet- or block-like coke at 350 °C via π–π stacking. In contrast, Menggulin oil, composed primarily of long-chain alkanes, yields loose coke at 350 °C but produces dense, highly aromatized coke at 450 °C, which corresponds to the critical alkane cracking temperature, through intense cracking–polymerization. Temperature differentially regulates oxidative processes, thereby shaping the divergent functional group distributions. Correlations between coke structure and combustion properties reveal that oxygenated/aliphatic-rich cokes exhibit high reactivity, whereas aromatized cokes release more heat. These findings provide guidance for ISC optimization, suggesting that sufficient high-temperature energy is required for paraffinic oils while medium-temperature oxidation regulation is suitable for naphthenic oils. This work advances the theory of ISC coke formation and supports enhanced recovery of heavy oils. Full article
(This article belongs to the Section Petroleum and Low-Carbon Energy Process Engineering)
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15 pages, 3795 KB  
Article
Two Drug–Drug Co-Amorphous Systems of Curcumin and Berberine Hydrochloride/Palmatine Hydrochloride with Improved Physicochemical Properties and Multifunctional Activities
by Yanjie Zhang, Quanhu Guo, Ling Liang, Mei Zhang, Rongjian Sa and Benyong Lou
Pharmaceutics 2026, 18(1), 9; https://doi.org/10.3390/pharmaceutics18010009 - 20 Dec 2025
Viewed by 1601
Abstract
Background/Objectives: The poor aqueous solubility of curcumin (CUR) limits its pharmaceutical application. Although amorphization can enhance its solubility, the amorphous form often exhibits insufficient physical stability. Co-amorphization, particularly drug–drug co-amorphous (CAM) formation, offers a promising approach to improve solubility, stability, and therapeutic [...] Read more.
Background/Objectives: The poor aqueous solubility of curcumin (CUR) limits its pharmaceutical application. Although amorphization can enhance its solubility, the amorphous form often exhibits insufficient physical stability. Co-amorphization, particularly drug–drug co-amorphous (CAM) formation, offers a promising approach to improve solubility, stability, and therapeutic efficacy. This study aimed to prepare and evaluate two CUR-based CAM systems using isoquinoline alkaloids berberine hydrochloride (BER) and palmatine hydrochloride (PAL) as co-formers to achieve simultaneous stabilization and synergistic bioactivity. Methods: CUR-BER and CUR-PAL CAM systems were prepared via rotary evaporation under vacuum at a 1:1 molar ratio. The solid-state properties were characterized by powder X-ray diffraction (PXRD), differential scanning calorimetry (DSC), scanning electron microscope (SEM), and 13C solid-state nuclear magnetic resonance spectroscopy (ssNMR). Dissolution, solubility, and stability studies were conducted, while antioxidant and anticancer activities were assessed by DPPH/ABTS+ radical-scavenging and MTT assays using HT-29 colorectal cancer cells. Results: PXRD and DSC confirmed the formation of single-phase amorphous systems with higher glass transition temperatures, indicating strong intermolecular interactions between CUR and BER/PAL. 13C ssNMR spectroscopy evidenced hydrogen-bond formation between the enolic hydroxyl moiety of CUR and the methoxy oxygen atoms in BER or PAL molecules. Both CAM systems significantly enhanced the solubility and dissolution rate of CUR, with CUR-PAL CAM showing up to a 15.1-fold solubility improvement. The CAM systems also displayed superior thermal stability, photolytic stability, and improved short-term humidity resistance, together with enhanced antioxidant and anticancer activities compared with pure amorphous CUR. Conclusions: Co-amorphization of CUR with isoquinoline alkaloids effectively improved solubility, stability, antioxidant and anticancer activities, representing a promising strategy for the rational design of multifunctional amorphous CUR-based drug formulations. Full article
(This article belongs to the Section Physical Pharmacy and Formulation)
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20 pages, 4124 KB  
Article
Modification of Chitosan with (−)-Gossypol and (−)-Gossypol Acetic Acid Using Free-Radical Grafting Method
by Anna Hlukhaniuk, Małgorzata Świętek, Anna Kołodziej, Aleksandra Wesełucha-Birczyńska, Andrii Mahun, Libor Kobera and Daniel Horák
Int. J. Mol. Sci. 2025, 26(23), 11721; https://doi.org/10.3390/ijms262311721 - 3 Dec 2025
Viewed by 1032
Abstract
One of the approaches to increase bioavailability and stability of hydrophobic biologically active compounds is their incorporation into polymer backbone. This work deals with the modification of chitosan (CS) with gossypol (GS), a phenolic compound with confirmed anticancer properties, by the free-radical grafting [...] Read more.
One of the approaches to increase bioavailability and stability of hydrophobic biologically active compounds is their incorporation into polymer backbone. This work deals with the modification of chitosan (CS) with gossypol (GS), a phenolic compound with confirmed anticancer properties, by the free-radical grafting method. The series of the CS derivatives with increasing content of GS were prepared using pure GS or gossypol acetate (GSA) and compared to the control CS (cCS). The starting CS, cCS, and GS-containing derivatives were characterized using Fourier-transform infrared (FTIR), Raman, and 13C ssNMR spectroscopies; elemental and thermogravimetric analysis to evaluate the influence of the radicals and GS on the properties of polymers was performed. The Folin–Ciocalteu (F-C) and 2,2-diphenyl-1-picrylhydrazyl (DPPH) methods were used to evaluate antioxidant properties of GS-modified CSs. Additionally, the polymer solubility and the specific viscosity of the solutions were determined. The content of GS in polymers raised proportionally with increasing amount of GS added to the reaction mixture, thereby enhancing the ability to scavenge free radicals. The type of GS used (GS or GSA) in polymers affected the degree of CS crosslinking (higher for pure GS), polymer solubility (lower for pure GS), the amount of grafted GS (~20% higher for GSA), and antioxidant properties in favor of GSA. Full article
(This article belongs to the Special Issue The Chitosan Biomaterials: Advances and Challenges, 3rd Edition)
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2 pages, 133 KB  
Abstract
Natural and Petroleum-Based Resins: Impact on SBR Dynamics by Solid-State NMR Spectroscopy and Relaxometry
by Michele Pierigé, Francesca Nardelli, Lucia Calucci, Mattia Cettolin, Eduardo Ribeiro De Azevedo, Marco Geppi and Francesca Martini
Proceedings 2026, 136(1), 80; https://doi.org/10.3390/proceedings2026136080 - 14 Nov 2025
Viewed by 251
Abstract
In the tire industry, tackifying resins are essential ingredients because they modulate green tack and green strength of the uncured rubbers, facilitating their manipulation and preventing creep and tear of the final products [...] Full article
(This article belongs to the Proceedings of The 3rd International Online Conference on Polymer Science)
15 pages, 4033 KB  
Review
Illuminating High-Affinity ATP Binding to the Sodium-Potassium Pump Using Solid-State NMR Spectroscopy
by David A. Middleton
Molecules 2025, 30(17), 3609; https://doi.org/10.3390/molecules30173609 - 3 Sep 2025
Viewed by 2147
Abstract
Proteins that span cellular membranes represent around 30% of the proteome and over 50% of drug targets. A variety of synthetic and naturally-occurring small organic molecules interact with membrane proteins and up- and down-regulate protein function. The atomic details of these regulatory molecules [...] Read more.
Proteins that span cellular membranes represent around 30% of the proteome and over 50% of drug targets. A variety of synthetic and naturally-occurring small organic molecules interact with membrane proteins and up- and down-regulate protein function. The atomic details of these regulatory molecules offer important information about protein function and aid the discovery, refinement and optimization of new drugs. X-ray crystallography and cryo-electron microscopy (cryo-EM) are not always able to resolve the structures of small molecules in their physiological sites on membrane proteins, particularly if the molecules are unstable or are reactive enzyme substrates. Solid-state nuclear magnetic resonance (SSNMR) is a valuable technique for filling in missing details on the conformations, dynamics and binding environments of small molecules regulators of membrane proteins. SSNMR does not require diffracting crystals possessing long-range order and can be performed on proteins within their native membranes and with freeze-trapping to maintain sample stability. Here, work over the last two decades is described, in which SSNMR methods have been developed to report on interactions of the ATP substrate with the Na,K-ATPase (NKA), an ion-transporting enzyme that maintains cellular potential in all animals. It is shown how a combination of SSNMR measurements on membranous NKA preparations in the frozen and fluid states have provided unique information about the molecular conformation and local environment of ATP in the high-affinity nucleotide site. A combination of chemical shift analysis using density functional theory (DFT) calculations, dipolar coupling measurements using REDOR and measurements of the rates of proton spin diffusion is appraised collectively. The work described herein highlights the methods developed and challenges encountered, which have led to a detailed and unrivalled picture of ATP in its high-affinity binding site. Full article
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20 pages, 3801 KB  
Article
Structural Study of Metakaolin-Phosphate Geopolymers Prepared with Wide Range of Al/P Molar Ratios
by Martin Keppert, Martina Urbanová, Ivana Šeděnková, Václav Pokorný, Michala Breníková, Jitka Krejsová, Vojtěch Pommer, Eva Vejmelková, Dana Koňáková and Jiří Brus
Polymers 2025, 17(17), 2358; https://doi.org/10.3390/polym17172358 - 30 Aug 2025
Cited by 8 | Viewed by 2284
Abstract
Geopolymers represent an innovative and environmentally sustainable alternative to traditional construction materials, offering significant potential for reducing anthropogenic CO2 emissions. Among these, phosphoric acid-activated metakaolin-based systems have attracted increasing attention for their chemical and thermal resilience. In this study, we present a [...] Read more.
Geopolymers represent an innovative and environmentally sustainable alternative to traditional construction materials, offering significant potential for reducing anthropogenic CO2 emissions. Among these, phosphoric acid-activated metakaolin-based systems have attracted increasing attention for their chemical and thermal resilience. In this study, we present a comprehensive structural and mechanical evaluation of metakaolin-based geopolymers synthesized across a wide range of Al/P molar ratios (0.8–4.0). Six formulations were systematically prepared and analyzed using X-ray powder diffraction (XRPD), small-angle X-ray scattering (SAXS), Fourier-transform infrared spectroscopy (FTIR), solid-state nuclear magnetic resonance (ssNMR), and complementary mechanical testing. The novelty of this work lies in the integrated mapping of composition–structure–property relationships across the broad Al/P spectrum under controlled synthesis, combined with the rare application of SAXS to reveal composition-dependent nanoscale domains (~18–50 nm). We identify a stoichiometric window at Al/P ≈ 1.5, where complete acid consumption leads to a structurally homogeneous AlVI–O–P network, yielding the highest compressive strength. In contrast, acid-rich systems exhibit divergent flexural and compressive behaviors, with enhanced flexural strength linked to hydrated silica domains arising from metakaolin dealumination, quantitatively tracked by 29Si MAS NMR. XRPD further reveals the formation of uncommon Si–P crystalline phases (SiP2O7, Si5P6O25) under low-temperature curing in acid-rich compositions. Together, these findings provide new insights into the nanoscale structuring, phase evolution, and stoichiometric control of silica–alumino–phosphate geopolymers, highlighting strategies for optimizing their performance in demanding thermal and chemical environments. Full article
(This article belongs to the Section Polymer Processing and Engineering)
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16 pages, 756 KB  
Article
New Insight into the Microstructure Changes and Molecular Mobility of Polyamides Exposed to H2S Scavengers
by Marina Perassoli de Lazari, Antonio Henrique Monteiro da Fonseca Thomé da Silva, Rodrigo Henrique dos Santos Garcia, Sylvia Correa dos Santos Teixeira, João Eduardo de Oliveira, Érica Gervasoni Chaves, Luiz Antônio de Oliveira Nunes, Hercílio de Angeli Honorato, Sonia Maria Cabral de Menezes, Aline Pinde Lima, Luiz Silvino Chinelatto Junior and Eduardo Ribeiro de Azevedo
Polymers 2025, 17(12), 1634; https://doi.org/10.3390/polym17121634 - 12 Jun 2025
Cited by 4 | Viewed by 1191
Abstract
Polyamides (PAs) are widely used as barrier materials in offshore oil and gas (O&G) equipment due to their mechanical strength and chemical resistance. However, long-term exposure to hydrogen sulfide scavengers (H2S-SCVs) may significantly affect their physicochemical properties. Previous studies using thermal [...] Read more.
Polyamides (PAs) are widely used as barrier materials in offshore oil and gas (O&G) equipment due to their mechanical strength and chemical resistance. However, long-term exposure to hydrogen sulfide scavengers (H2S-SCVs) may significantly affect their physicochemical properties. Previous studies using thermal analysis and 1H time-domain NMR (1H TD-NMR) suggest that ethoxylated H2S-SCVs impose molecular constraints, increasing the glass transition temperature (Tg) and reducing chain mobility above Tg. The present study builds upon these findings using a multi-technique analytical approach, including FTIR, Raman, 1H DQ-TD-NMR, and 13C solid-state NMR (ssNMR), to provide a more comprehensive understanding of the molecular alterations in PA materials. The results clearly demonstrate that H2S-SCV exposure leads to the progressive exudation of plasticizers from the PA matrix. This plasticizer loss is a key factor contributing to the observed shift in Tg and the reduction in molecular mobility. 1H DQ-TD-NMR data confirmed an increase in the density of dynamically constrained chains over time and allowed for the characterization of heterogeneity in these constraints throughout the PA matrix. Moreover, 13C ssNMR spectra revealed the presence of immobilized H2S-SCV chemical groups within the polymer matrix, strongly supporting the early statement that the mobility constraints observed in 1H DQ-TD-NMR are associated with the formation of crosslinks induced by the H2S-SCV: H2S-SCV acts as a crosslinking agent. Taken together, our findings indicate that both plasticizer loss and H2S-SCV-induced crosslinking contribute significantly to the microstructural evolution of PAs when exposed to ethoxylated H2S-SCVs, offering important insights into their degradation mechanisms and long-term behavior in aggressive operational environments. Full article
(This article belongs to the Special Issue Advanced Spectroscopy for Polymers: Design and Characterization)
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12 pages, 1622 KB  
Article
Automated Chemical Shift Assignments of MAS Solid-State NMR Spectra of Complex Protein Systems by ssPINE/ssPINE-POKY
by Andrea Estefania Lopez Giraldo, Mehdi Rahimi and Woonghee Lee
Appl. Sci. 2025, 15(12), 6563; https://doi.org/10.3390/app15126563 - 11 Jun 2025
Cited by 2 | Viewed by 2404
Abstract
Solid-state nuclear magnetic resonance (ssNMR) spectroscopy enables studying complex macromolecules with low solubility. Compared to solution NMR, few tools exist for biomacromolecule ssNMR data analysis. A key challenge is assigning spin systems due to low peak dispersion. Broad peaks from large dipolar couplings [...] Read more.
Solid-state nuclear magnetic resonance (ssNMR) spectroscopy enables studying complex macromolecules with low solubility. Compared to solution NMR, few tools exist for biomacromolecule ssNMR data analysis. A key challenge is assigning spin systems due to low peak dispersion. Broad peaks from large dipolar couplings and shift anisotropy cause significant overlap and missing peaks. To address this, we introduce ssPINE-POKY, a user-friendly graphical user interface (GUI) integrated into the POKY suite. ssPINE-POKY streamlines the automation of spin system recognition and chemical shift assignment in multidimensional ssNMR spectra by integrating the ssPINE algorithm within an intuitive interface. The platform allows easy and fast job submission, real-time result visualization, and enhanced analysis through additional built-in tools, significantly improving the efficiency of ssNMR data interpretation. Full article
(This article belongs to the Special Issue Development and Application of Computational Chemistry Methods)
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15 pages, 5995 KB  
Article
Conformational Analysis of Uniformly 13C-Labeled Peptides by Rotationally Selected 13Cα-13CH3 Double-Quantum Solid-State NMR
by David Middleton
Molecules 2025, 30(3), 739; https://doi.org/10.3390/molecules30030739 - 6 Feb 2025
Cited by 1 | Viewed by 2393
Abstract
Peptides are an important class of biomolecules that perform many physiological functions and which occupy a significant and increasing share of the pharmaceutical market. Methods to determine the solid-state structures of peptides in different environments are important to help understand their biological functions [...] Read more.
Peptides are an important class of biomolecules that perform many physiological functions and which occupy a significant and increasing share of the pharmaceutical market. Methods to determine the solid-state structures of peptides in different environments are important to help understand their biological functions and to aid the development of drug formulations. Here, a new magic-angle spinning (MAS) solid-state nuclear magnetic resonance (SSNMR) approach is described for the structural analysis of uniformly 13C-labeled solid peptides. Double-quantum (DQ) coherence between selective pairs of 13C nuclei in peptide backbone and side-chain CH3 groups is excited to provide restraints on (i) 13C–13C internuclear distances and (ii) the relative orientations of C–H bonds. DQ coherence is selected by adjusting the MAS frequency to the difference in the resonance frequencies of selected nuclear pairs (the rotational resonance condition), which reintroduces the dipolar coupling between the nuclei. Interatomic distances are then measured using a constant time SSNMR experiment to eliminate uncertainties arising from relaxation effects. Further, the relative orientations of C–H bond vectors are determined using a DQ heteronuclear local field SSNMR experiment, employing 13C–1H coupling amplification to increase sensitivity. These methods are applied to determine the molecular conformation of a uniformly 13C-labeled peptide, N-formyl-l-methionyl-l-leucyl-l-phenylalanine (fMLF). From just six distance and six angular restraints, two possible molecular conformations are determined, one of which is in excellent agreement with the crystal structure of a closely related peptide. The method is envisaged to a useful addition to the SSNMR repertoire for the solid-state structure determination of peptides in a variety of forms, including amyloid fibrils and pharmaceutical formulations. Full article
(This article belongs to the Section Chemical Biology)
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12 pages, 1494 KB  
Article
Chitin Extracted from Black Soldier Fly Larvae at Different Growth Stages
by Andrea Marangon, Geo Paul, Riccardo Zaghi, Leonardo Marchese and Giorgio Gatti
Polymers 2024, 16(20), 2861; https://doi.org/10.3390/polym16202861 - 10 Oct 2024
Cited by 13 | Viewed by 4778
Abstract
The black soldier fly (BSF) Hermetia Illucens can grow rapidly and on a wide variety of organic materials, and it is extensively used as a means of disposing of household organic waste. Different phases of the life cycle of BSF larvae (BSFL) are [...] Read more.
The black soldier fly (BSF) Hermetia Illucens can grow rapidly and on a wide variety of organic materials, and it is extensively used as a means of disposing of household organic waste. Different phases of the life cycle of BSF larvae (BSFL) are used in this work to extract chitin after the removal of lipids, mineral salts, and proteins. Multiple techniques, such as X-ray diffractometry, infrared spectroscopy, solid-state Nuclear Magnetic Resonance (13C ss-NMR) and thermogravimetric analysis, are used to investigate the chemical and physical characteristics of the extracted samples of chitin, which shows a high degree of acetylation (from 78% to 94%). The extracted chitin shows an increase of the thermal stability of 20 °C in the initial stage of life and 35 °C at the end of the life cycle if compared with a commercial standard. Moreover, the extracted chitin shows an increase in the crystallinity degree during the BSFL growth time (from 72% to 78%). Full article
(This article belongs to the Special Issue Natural Polysaccharides: Chitosan, Chitin, Pectin and Gums)
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6 pages, 1319 KB  
Short Note
2-Methylpropan-2-ammonium [(3R,5R)-7-[(1S,2S,6S,8S,8aR)-6-hydroxy-2-methyl-8-[(2S)-2-methylbutanoyl]oxy-1,2,6,7,8,8a-hexahydronaphthalen-1-yl]-3,5-heptanoate
by Ioana-Georgeta Grosu, Alexandru Turza, Xenia Filip and Maria-Olimpia Miclaus
Molbank 2024, 2024(3), M1885; https://doi.org/10.3390/M1885 - 24 Sep 2024
Viewed by 1370
Abstract
Pravastatin is a popular statin agent with applications in the treatment of cardiovascular diseases for patients with an abnormal lipid panel. The starting form of pravastatin is amorphous and following recrystallization, it becomes a crystalline solid with tert-butylamine salt molecules embedded within the [...] Read more.
Pravastatin is a popular statin agent with applications in the treatment of cardiovascular diseases for patients with an abnormal lipid panel. The starting form of pravastatin is amorphous and following recrystallization, it becomes a crystalline solid with tert-butylamine salt molecules embedded within the lattice. Its molecular and crystal structure were elucidated based on single-crystal X-ray diffraction and characterized by ss-NMR. Full article
(This article belongs to the Section Structure Determination)
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14 pages, 2522 KB  
Article
One-Step Spark Plasma Erosion Processing of Carbon-Coated Sn-Si Nanoparticles for Lithium-Ion Battery Anodes
by Emma Marie Hamilton White, Lisa M. Rueschhoff, Takeshi Kobayashi, Jonathan Z. Bloh, Steve W. Martin and Iver E. Anderson
Surfaces 2024, 7(3), 725-738; https://doi.org/10.3390/surfaces7030047 - 10 Sep 2024
Cited by 2 | Viewed by 2197
Abstract
High density portable energy storage is desirable owing to the energy requirements of portable electronics and electric vehicles. The Li-ion battery’s high energy density could be even further improved through the utilization of alternative materials (instead of carbon) for the anode, such as [...] Read more.
High density portable energy storage is desirable owing to the energy requirements of portable electronics and electric vehicles. The Li-ion battery’s high energy density could be even further improved through the utilization of alternative materials (instead of carbon) for the anode, such as Sn or Si. Nonetheless, the large volume expansion upon lithiation, up to ~300% for Li22Si5, causes pulverization and rapid capacity degradation during cycling. Sn also forms a Li22Sn5 compound with the equivalent stoichiometric Li capacity but with enhanced ductility. Nano-sized Si and Sn have demonstrated distinctive nanoscale properties, facilitating the retention of higher capacities, particularly when coated with carbon, which improves mechanical stability. To date, the methods of synthesizing coated Si, Sn, or Si-Sn alloyed nanoparticles are complicated, costly, and not readily scalable to meet the demands of cost-effective manufacturing. Spark plasma erosion in a hydrocarbon dielectric has been explored as a one-step process to produce Sn-Si alloy nanoparticles coated with a thin carbon film, offering a scalable and cost-effective processing route. The resulting Sn-Si particles exhibited a bi-modal size distribution at ~5 nm and ~500 nm and were carbon-coated, as intended, from the hydrocarbon dielectric breakdown. The spark-eroded nanoparticles were thoroughly characterized using TEM/EDS, XPS, AES, SSNMR, and TGA, and their improved electrochemical performance was assessed through half-cell experiments. Full article
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17 pages, 5537 KB  
Article
Synthesis and Characterization of Novel Adsorbents Based on Functionalization of Graphene Oxide with Schiff Base and Reduced Schiff Base for Pesticide Removal
by Narinj Taghiyeva, Ulviyya Hasanova, Maurice Millet, Carole Gardiennet, Zarema Gakhramanova, Mushfig H. Mirzayev, Lala Gahramanli, Cuong Pham-Huu, Solmaz Aliyeva, Gunel Aliyeva, Fuad Rzayev, Eldar Gasimov, Corentin Boulogne and Haji Vahid Akhundzada
Materials 2024, 17(16), 4096; https://doi.org/10.3390/ma17164096 - 18 Aug 2024
Cited by 13 | Viewed by 3143
Abstract
Graphene oxide (GO) nanosheets were functionalized with Schiff base and reduced Schiff base. Covalent and non-covalent functionalized GO nanostructures have been tested for the removal of pesticides with different chemical structures and properties (e.g., Epoxiconazole, Dimethomorph, Cyprodinil, Chlorothalonil, Acetochlor, Trifluralin) from aqueous solutions. [...] Read more.
Graphene oxide (GO) nanosheets were functionalized with Schiff base and reduced Schiff base. Covalent and non-covalent functionalized GO nanostructures have been tested for the removal of pesticides with different chemical structures and properties (e.g., Epoxiconazole, Dimethomorph, Cyprodinil, Chlorothalonil, Acetochlor, Trifluralin) from aqueous solutions. The structure and morphology characteristics of the prepared structures were analyzed using techniques such as solid-state nuclear magnetic resonance (SSNMR), Fourier transform infrared (FTIR) spectroscopy, X-ray diffraction (XRD), thermogravimetric analysis (TGA), scanning electron microscopy (SEM), and transmission electron microscopy (TEM). Results of the experiments showed that, although the non-covalent functionalization did not affect the adsorption properties of GO much, the covalent functionalization increased the adsorption capacity of GO against the mentioned pesticides. Full article
(This article belongs to the Special Issue Adsorbents and Their Applications (Second Volume))
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