In this era, renewable energy technologies are suitable to meet the challenges of fossil fuel depletion and global warming. Thus, hydrogen is gaining attention as an alternative clean energy carrier that can be produced from various methods, one of them is the iodine-sulfur (I-S) cycle which is a thermochemical process. The I-S cycle requires a material that can withstand an extremely corrosive environment at high temperatures. Immersion tests were conducted on bare superalloy Hastelloy X (HX), MoSi and SiC-MoSi coated HX, deposited in physical vapor deposition (PVD) to evaluate their corrosion resistance. Bare HX exhibited a high corrosion rate of 208.1 mm yr when exposed to 98 wt% sulfuric acid at 300 °C. In contrast, HX with MoSi coating showed a much lower corrosion rate of 23.5 mm yr, and HX with SiC-MoSi coating demonstrated the lowest corrosion rate at 6.5 mm yr under the same conditions. The coated samples were analyzed via FESEM before and after corrosion testing. The FESEM images reveal the formation of coalescent particles on the surface of the coating. The elemental analysis illustrates an increased concentration of silicon and oxygen in the corroded samples. Elemental mapping of these samples show a uniform distribution of elements over the sample. These findings contribute not only to materials science understanding but also to practical applications in hydrogen production via the I-S cycle, where corrosion-resistant materials are critical.
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http://dx.doi.org/10.1016/j.heliyon.2023.e21640 | DOI Listing |
RSC Adv
December 2024
Department of Chemical Engineering, BITS Pilani K K Birla Goa Campus, Zuarinagar Goa 403726 India
This study identifies the most suitable catholyte for the electrochemical HI decomposition process, an emerging single-step alternative to the conventional multistep HI section of the I-S thermochemical cycle for hydrogen production. Four catholytes, HO, HPO, HSO, and HI, were shortlisted based on compatibility with the I-S cycle and ability to support the hydrogen evolution. Polarization studies in a two-compartment electrochemical cell revealed a similar order of onset potentials for the electrochemical HI decomposition across all four catholyte electrolytes.
View Article and Find Full Text PDFBMC Vet Res
December 2024
Institute of Animal Reproduction and Food Research, Polish Academy of Sciences, 10-748, Olsztyn, Poland.
Background: Endometrosis (chronic degenerative endometritis) results in morphological changes in the equine endometrium and impairs its secretory function. However, the effect of this condition on the myometrium remains unclear. Lysophosphatidic acid (LPA) may affect female reproductive function and embryo transport by influencing uterine contractility through its receptors (LPARs).
View Article and Find Full Text PDFAm J Ophthalmol
November 2024
From the Harvard Retinal Imaging Lab (C.B., F.R., F.V., M.G., X.D., A.B., I.P., I.S., K.O., G.B., I.G., J.R., I.L., L.A. K., and J.B.M.), Massachusetts Eye and Ear, Harvard Medical School, Boston, Massachusetts, USA; Department of Ophthalmology (F.R., X.D., D.N., G.B., R.B., I.L., L.A. K., D.V., D.H., J.W.M., and J.B. M.), Retina Service, Massachusetts Eye and Ear, Boston, Massachusetts, USA. Electronic address:
J Ovarian Res
November 2024
Department of Pathology, Hacettepe University School of Medicine, Ankara, Turkey.
Objective: To analyze how the PD-L1 expression and CD8 + tumor infiltrating lymphocyte (TIL) levels in biopsy samples before neoadjuvant chemotherapy (NACT) can predict chemotherapy response score and survival for advanced high-grade serous ovarian cancer (HGSC).
Methods: We retrospectively analyzed 45 patients with advanced epithelial ovarian cancer between 2010 and 2018, who had received at least three cycles of NACT. PD-L1 expression and CD8 + TIL levels were evaluated by immunohistochemical staining in the pre-NAC tumor samples from which the patients had been diagnosed.
Mol Ther
November 2024
Fraunhofer Institute for Cell Therapy and Immunology, Leipzig, Germany. Electronic address:
Chimeric antigen receptor (CAR)-T cell products, classified as Advanced Therapy Medicinal Products (ATMPs), have shown promising outcomes in cancer immunotherapy. The quality of raw and starting materials used in manufacturing is critical to ensure the efficacy and safety of CAR-T cell products and depends primarily on the selection of the right materials and the right suppliers. It is essential to consider a long-term strategy when selecting raw and starting materials to prevent delays in the supply of innovative, high-quality, and safe therapies to patients.
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