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Organics, Volume 7, Issue 3 (September 2026) – 10 articles

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48 pages, 6507 KB  
Review
Photocatalytic C–C Bond Coupling Reactions Towards Organic Transformation—Recent Updates
by Priyanka R. Sakhare, Amit Kumar Jha, Praveen Kumar, Vittal Seema and Subba Rao Cheekatla
Organics 2026, 7(3), 36; https://doi.org/10.3390/org7030036 (registering DOI) - 7 Sep 2026
Abstract
The development of sustainable and efficient methods for carbon–carbon (C–C) bond formation remains the main objective in modern organic synthesis. In recent years, photocatalysis has developed as a suitable alternative to conventional transition-metal-catalyzed approaches, offering mild reaction conditions, high functional-group tolerance, excellent atom [...] Read more.
The development of sustainable and efficient methods for carbon–carbon (C–C) bond formation remains the main objective in modern organic synthesis. In recent years, photocatalysis has developed as a suitable alternative to conventional transition-metal-catalyzed approaches, offering mild reaction conditions, high functional-group tolerance, excellent atom economy, and the ability to utilize visible light as a clean and renewable energy source. Through unique radical-mediated pathways, photocatalytic strategies allow the selective activation of traditionally unreactive substrates, including haloarenes, alkanes, alcohols, carboxylic acids, and amines, thereby providing efficient routes to complex molecular architectures. Beyond organic synthesis, photocatalysis has also demonstrated significant potential in broader areas of applied chemistry. This review summarizes the major advances in photocatalytic C–C bond coupling reported from 2023 to early 2026, with special focus on C(sp3)–C(sp3), C(sp3)–C(sp2), and C(sp2)–C(sp2) bond-forming reactions. Representative catalytic systems, substrate scope, reaction mechanisms, and synthetic applications are critically discussed, including dual photoredox/transition-metal catalysis, metal-free photocatalysis, hydrogen atom transfer (HAT), proton-coupled electron transfer (PCET), radical–radical coupling, decarboxylative and deaminative functionalization, and enantioselective transformations. Finally, current challenges, emerging trends, and future opportunities for developing more sustainable, scalable, and selective photocatalytic C–C bond-forming methodologies are highlighted, providing a comprehensive resource for researchers working in synthetic and medicinal chemistry. Full article
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20 pages, 1617 KB  
Review
Cyclodextrin-Based Delivery of Traditional Chinese Medicine Active Molecules
by Lili Cai, Jiajun Chen, Suimei Wei, Suya Huang and Yong-Guang Jia
Organics 2026, 7(3), 35; https://doi.org/10.3390/org7030035 - 7 Aug 2026
Viewed by 434
Abstract
Active molecules derived from traditional Chinese medicine (TCM) represent a valuable source of lead compounds for modern drug discovery, demonstrating considerable potential in the prevention and treatment of chronic diseases, cancer therapy, and immune modulation. Nevertheless, their clinical translation is often impeded by [...] Read more.
Active molecules derived from traditional Chinese medicine (TCM) represent a valuable source of lead compounds for modern drug discovery, demonstrating considerable potential in the prevention and treatment of chronic diseases, cancer therapy, and immune modulation. Nevertheless, their clinical translation is often impeded by intrinsic limitations such as poor aqueous solubility, low bioavailability, inadequate chemical stability, and significant gastrointestinal irritation. Cyclodextrins (CDs) and their derivatives, characterized by a hydrophobic internal cavity, are capable of forming inclusion complexes with TCM and their derived active constituents, thereby improving their physicochemical and pharmacokinetic profiles. Over the past five years, substantial progress has been made in this domain. CD-based inclusion strategies have been shown to markedly enhance the solubility and dissolution rate of poorly water-soluble TCM compounds, including flavonoids, alkaloids, and terpenoids. Moreover, this approach contributes to improved drug stability, effective taste masking, and the achievement of modified release profiles, such as sustained or targeted delivery, ultimately leading to enhanced therapeutic efficacy and reduced adverse effects. The development of novel CD derivatives and smart delivery systems has further broadened their application potential. This review summarizes recent advances in the CD-based encapsulation of TCM active molecules, highlighting key formulation strategies that address persistent challenges in the modernization of TCM. It also provides a foundation for future research and development in natural product-based therapeutics. Full article
(This article belongs to the Special Issue Organic Supramolecular Chemistry of Natural Products)
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12 pages, 2120 KB  
Review
Research Progress in Fluorinated Isoquinoline-1,3-diones
by Aiyun Liu, Youpeng Wang, Ruihan Wang, Redili Abulimiti, Xiangru Hao, Yunlei Wang, Xiaoran Tian, Huaiyuan Zhang, Tonglin Wang, Zhensheng Fu, Wenxiu Zheng and Junqiang Shi
Organics 2026, 7(3), 34; https://doi.org/10.3390/org7030034 - 7 Aug 2026
Viewed by 219
Abstract
Fluorinated isoquinoline-1,3-diones possess important biological activities and application value in many fields such as medicine, pesticides, and organic synthesis. This review summarizes the synthetic methods of fluorinated isoquinoline-1,3-diones reported in recent years, mainly including classical synthetic methods, visible-light-induced catalytic methods, and electroorganic synthesis. [...] Read more.
Fluorinated isoquinoline-1,3-diones possess important biological activities and application value in many fields such as medicine, pesticides, and organic synthesis. This review summarizes the synthetic methods of fluorinated isoquinoline-1,3-diones reported in recent years, mainly including classical synthetic methods, visible-light-induced catalytic methods, and electroorganic synthesis. The mechanisms of each reaction are described. Among them, visible-light-induced and electrochemical approaches show improved sustainability and mild reaction conditions. In this review, these synthetic methods are summarized to provide a reference for the design and research of these compounds. Future perspectives on method development are also briefly considered. Full article
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17 pages, 1320 KB  
Article
Bio-Inspired Metal-Free Catalysis: Natural Sugars Enable Efficient CO2 Conversion into Cyclic Carbonates
by Oscar A. Douglas-Gallardo, Valentino Cárdenas-Toledo, Marta Navarro, Enrique Francés-Poveda, Jesús Naranjo, Genesys L. Mahecha, Felipe de la Cruz-Martínez, Francisca Werlinger, Agustín Lara-Sánchez and Javier Martínez
Organics 2026, 7(3), 33; https://doi.org/10.3390/org7030033 - 7 Aug 2026
Viewed by 355
Abstract
The consistent increase in atmospheric CO2 concentration, mostly driven by the global combustion of fossil fuels, is considered one of the primary contributors to the increasing severity of environmental problems, like climate change and global warming. Attending to this issue requires innovative [...] Read more.
The consistent increase in atmospheric CO2 concentration, mostly driven by the global combustion of fossil fuels, is considered one of the primary contributors to the increasing severity of environmental problems, like climate change and global warming. Attending to this issue requires innovative strategies that transform CO2 into a valuable resource. In this work, we report a sustainable and fully metal-free approach for the synthesis of cyclic carbonates via the direct coupling of CO2 with epoxides, using natural sugars as readily available, non-toxic organocatalysts in combination with tetrabutylammonium iodide (TBAI) as a cocatalyst. Seven representative mono- and disaccharides were screened, employing styrene oxide as a model substrate under mild reaction conditions (80 °C, 20 bar CO2, 2 h). Among them, D-xylose exhibited the best catalytic performance. The robustness of this catalytic system was further demonstrated through the efficient transformation of a wide range of terminal, internal, and biomass-derived epoxides into their corresponding cyclic carbonates with high yields and selectivity (up to 99%). Additionally, a set of computational simulations based on density functional theory (DFT) calculations was carried out to gain insight into the atomistic mechanisms involved in this chemical transformation. We identified that the hydroxyl groups of the sugar catalyst play a pivotal role in activating the epoxy ring-opening process, leading to cyclic carbonate formation. This bio-inspired strategy provides a green, cost-effective, and scalable pathway to produce key precursors for organic chemistry, contributing to the development of a circular carbon economy and the advancement of sustainable chemistry. Full article
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41 pages, 62808 KB  
Review
Synergistic Design of Flexible Substrates and Transparent Electrodes for Application in Organic Photovoltaics: A Review
by Fengchun Liang, Fuchong Li, Penghua Yan, Yuting Li, Gaiguo Liu, Youjie Li, Baili Wang, Huaqiang Zhang and Yamin Zhang
Organics 2026, 7(3), 32; https://doi.org/10.3390/org7030032 - 3 Aug 2026
Viewed by 420
Abstract
Flexible organic solar cells (FOSCs) are a promising green energy technology due to their mechanical flexibility, light weight, low cost, and compatibility with large-area solution processing. Although the power conversion efficiency (PCE) of rigid organic solar cells has exceeded 20%, a significant performance [...] Read more.
Flexible organic solar cells (FOSCs) are a promising green energy technology due to their mechanical flexibility, light weight, low cost, and compatibility with large-area solution processing. Although the power conversion efficiency (PCE) of rigid organic solar cells has exceeded 20%, a significant performance gap remains for flexible devices, primarily constrained by the limitations of two key components: the flexible substrate and the transparent electrode. This review systematically summarizes recent research progress on flexible substrates, including ultrathin glass, polymer substrates, stretchable substrates, and bio-based substrates, and flexible transparent electrodes, including ITO, conductive polymers, carbon-based nanomaterials, ultrathin metal films, metal grids, and metal nanowire networks. Building on this, the review explores strategies for the synergistic design of substrates and electrodes, analyzing critical pathways for their co-optimization across four dimensions: interface engineering, mechanical compatibility, optical coupling, and process integration. Examining representative case studies from the literature, optimal substrate–electrode pairings for different application scenarios are summarized. Finally, the review outlines a future perspective on the evolution from compatibility toward functional integration, offering a systematic framework for the development of next-generation flexible photovoltaic devices that are efficient, stable, and adaptable to diverse application requirements. Full article
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46 pages, 32785 KB  
Review
Molecular Transformation Pathways in Textile-Derived Carbon Materials: From Organic Fiber Chemistry to Functional Electrochemical Applications
by Md. Shamim Alam, Mashud Ahmed, Abdul Barik, Samia Jahan Tofa, Md. Koushic Uddin, Antonio Greco, Mohammad Mahbubul Alam and Muksit Ahamed Chowdhury
Organics 2026, 7(3), 31; https://doi.org/10.3390/org7030031 - 27 Jul 2026
Viewed by 704
Abstract
Due to the rapid development of the textile industry and increased consumption of various textiles composed of both synthetic and natural fibers, large amounts of textile waste are produced, leading to environmental and economic problems on a global scale. Turning textile waste into [...] Read more.
Due to the rapid development of the textile industry and increased consumption of various textiles composed of both synthetic and natural fibers, large amounts of textile waste are produced, leading to environmental and economic problems on a global scale. Turning textile waste into carbon materials that can be used in a broad range of applications has become a viable solution to address this challenge in terms of sustainability and value generation. Natural and synthetic textile fibers have distinctive molecular structures with relatively high carbon content and variable chemical functionality; therefore, they have been identified as highly promising precursors for fabricating carbon materials with various electrochemical and environmental applications. At the same time, the properties of carbonized and activated textile fibers are strongly dependent on the molecular transformations taking place during thermal treatment and functionalization of textile fibers. This review will provide a comprehensive overview of the molecular evolution of natural and synthetic textile fibers during carbonization and activation processes in terms of dehydration, depolymerization, aromatization, heteroatom preservation, and graphitization mechanisms. The effect of precursor chemical composition, pyrolysis conditions, activation process, and heteroatom incorporation on the structure of carbonized and activated textile fibers and their physical and electrochemical properties will be analyzed. Particular emphasis is placed on electrochemical applications, including capacitive deionization, supercapacitors, electrocatalysis, and emerging smart electrochemical textile systems, highlighting how molecular transformation, pore engineering, and surface chemistry govern charge storage, ion adsorption, and catalytic behavior. In addition, major characterization techniques such as Raman spectroscopy, X-ray diffraction, X-ray photoelectron spectroscopy, and Brunauer–Emmett–Teller surface area analysis will be reviewed and discussed in relation to understanding the interdependence between molecular structure and material properties. Finally, recent issues related to feedstock heterogeneity, scalability, energy efficiency, and sustainability of processing are highlighted, and future perspectives on multifunctional carbon structures and circular utilization of textile waste are discussed. Full article
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29 pages, 8764 KB  
Review
From Spice to Scaffold: Design and Development of Curcumin Analogs to Combat Pancreatic Cancer
by Mukund Jha and Amitabh Jha
Organics 2026, 7(3), 30; https://doi.org/10.3390/org7030030 - 13 Jul 2026
Viewed by 425
Abstract
Pancreatic ductal adenocarcinoma (PDAC) is considered as one of the most lethal malignancies, characterized by late diagnosis, aggressive local invasion, profound therapy resistance, and a suppressive tumor microenvironment. Currently known chemotherapy regimens for the treatment of PDAC are limited and typically depend on [...] Read more.
Pancreatic ductal adenocarcinoma (PDAC) is considered as one of the most lethal malignancies, characterized by late diagnosis, aggressive local invasion, profound therapy resistance, and a suppressive tumor microenvironment. Currently known chemotherapy regimens for the treatment of PDAC are limited and typically depend on the stage of disease. For pre-surgery and post-surgery settings, modified combination of fluorouracil, leucovorin, irinotecan, and oxaliplatin are used. Gemcitabine/nab-paclitaxel is an alternative regimen used for the disease at advanced stage. However, modest efficacy and high toxicity are often associated with these treatments. Therefore, more efficacious, safer, and novel therapeutic options are urgently required. The natural product curcumin has been shown to exert promising anti-inflammatory, pro-apoptotic, and antimetastatic activities in PDAC models. Inspired by these initial reports, there has been a sustained effort in the medicinal chemistry community to develop chemotherapeutic agents for the treatment of PDAC based on the chemical architecture of curcumin. This review highlights recent developments of multiple classes of curcumin analogs as a credible and versatile class of investigational agents for addressing the unmet therapeutic needs of pancreatic cancer. Full article
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14 pages, 1805 KB  
Article
Phosphoric Acid Derivative-Catalyzed Carbonyl-Olefin Metathesis
by Heidi A. Dahlmann, Finn Beruldsen, Hayden L. Criswell, Phillip F. Crook, Evan C. Glassford, Alyssa K. Jones, Reece B. Mitchell, Laura F. Mortan, Nicholas Ryan, Alexandria M. Smith and Evan M. Vazquez
Organics 2026, 7(3), 29; https://doi.org/10.3390/org7030029 - 8 Jul 2026
Viewed by 849
Abstract
Ring-closing carbonyl-olefin metathesis (COM) reactions provide a straightforward method for producing cyclic alkenes from precursors containing carbonyl functional groups tethered to nucleophilic alkenes. Within the last decade, many methods for carrying out Lewis acid- or organocatalyzed COM reactions were reported; however, Brønsted–Lowry acid-catalyzed [...] Read more.
Ring-closing carbonyl-olefin metathesis (COM) reactions provide a straightforward method for producing cyclic alkenes from precursors containing carbonyl functional groups tethered to nucleophilic alkenes. Within the last decade, many methods for carrying out Lewis acid- or organocatalyzed COM reactions were reported; however, Brønsted–Lowry acid-catalyzed COM reactions are less developed. Herein, we report that phosphoric acid derivatives and N-triflylphosphoramides mediate COM reactions, although the substrate scope is limited to biaryl compounds that cyclize to produce phenanthrene products. We also disclose the synthesis and characterization of a previously non-fully characterized phosphoric acid derivative and a novel phosphoramide. Full article
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17 pages, 6533 KB  
Article
The Synthesis of Tethered (Arene)Ru(TsDPEN) Catalysts Containing Electron-Donating and -Withdrawing Groups on the η6-Arene Ring and Their Screening in the Asymmetric Transfer Hydrogenation (ATH) of Ketones
by Shweta K. Gediya and Martin Wills
Organics 2026, 7(3), 28; https://doi.org/10.3390/org7030028 - 3 Jul 2026
Viewed by 648
Abstract
We have prepared two novel tethered (arene)Ru(II)/TsDPEN complexes, one containing a p-OTBS on the η6-arene ring, and the other with a p-CO2Et group at the same position, representing an electron-rich and electron-poor derivative. These have been evaluated in asymmetric [...] Read more.
We have prepared two novel tethered (arene)Ru(II)/TsDPEN complexes, one containing a p-OTBS on the η6-arene ring, and the other with a p-CO2Et group at the same position, representing an electron-rich and electron-poor derivative. These have been evaluated in asymmetric transfer hydrogenation (ATH) of acetophenone derivatives and acetylcyclohexane. Both catalysts were effective in ATH and gave alcohols in high ees in most cases (with the exception of acetylcyclohexane reduction), mirroring results previously obtained using Ru(II) tethered catalysts. It was notable that the p-CO2Et-containing catalyst was more active than the untethered equivalent catalyst containing an ester on the η6-arene ring, although it still gave products of high ee. This indicates that N6-arene ring tethering can compensate for the lower activity of the electron-withdrawing ester group and may be a useful factor to consider for future catalyst design. Full article
(This article belongs to the Special Issue Recent Advances in Asymmetric Transfer Hydrogenation)
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22 pages, 737 KB  
Article
Stereochemical Stability of Phenylglycine in Peptide Synthesis: Stereoretentive Coupling and Deprotection Strategies
by Zeping Wang, Shoko Ishikawa, Yuki Fukuda, Sayaka Yamada, Meika Inomoto, Desita Triana Aziz, Xueyu Yang, Zetry Puteri Tachrim, Takeyuki Suzuki, Yuta Murai and Makoto Hashimoto
Organics 2026, 7(3), 27; https://doi.org/10.3390/org7030027 - 3 Jul 2026
Viewed by 524
Abstract
Phenylglycine (Phg) is a nonproteinogenic α-amino acid found in various bioactive molecules. The C-terminal activation of N-acyl Phg is often accompanied by oxazolone-mediated racemization, arising from the direct attachment of the phenyl ring to the α-carbon. After peptide bond formation with another [...] Read more.
Phenylglycine (Phg) is a nonproteinogenic α-amino acid found in various bioactive molecules. The C-terminal activation of N-acyl Phg is often accompanied by oxazolone-mediated racemization, arising from the direct attachment of the phenyl ring to the α-carbon. After peptide bond formation with another chiral amino acid, this stereochemical erosion is observed as Phg-site epimerization and diastereomer formation. N-acyl activated esters, particularly N-hydroxysuccinimide (OSu) esters, are widely used for peptide bond formation with proteinogenic α-amino acids. Our previous study on N-trifluoroacetyl phenylglycine (TFA-Phg-OH) revealed that Phg-site epimer formation could still occur when TFA-Phg-OSu was employed as an acyl donor for coupling with amino acid ester hydrochlorides (AA–OMe·HCl) in the presence of a soluble organic base. To address these issues, in this study, we report a base-limited one-pot coupling of TFA-Phg-OH with α-amino acid ester hydrochlorides (AA–OR·HCl; R = Me or tert-Bu) using 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide hydrochloride (WSCD·HCl), which effectively suppresses Phg epimerization. The resulting TFA-Phg–AA–OR dipeptides (AA = Ala, Val, Leu, Met, Phg) were all obtained at a >60% yield with a diastereomeric excess (de) ≥ 98.5%. Notably, reducing the amount of triethylamine further minimized epimer formation, while Ba(OH)2·8H2O and trifluoroacetic acid enabled stereoretentive deprotection of the N-TFA group and tert-butyl ester, respectively. This workflow provides practical access to both protected and deprotected Phg–AA motifs, thereby facilitating the preparation of unprotected Phg-containing peptide building blocks. Full article
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