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1.
Exp Clin Transplant ; 19(4): 390-392, 2021 04.
Article in English | MEDLINE | ID: mdl-33736585

ABSTRACT

Necrotizing enterocolitis is one of the most common and worrying diseases in neonates, commonly shown in premature neonates, and is associated with significant mortality and morbidity. Necrotizing enterocolitis is characterized by intestinal mucosal injury that can progress to transmural bowel necrosis, and radiologically it can present with either pneumatosis intestinalis or portal venous gas. It is postulated to develop in an immunocompromised host in the setting of bacterial colonization, usually after administration of non-breast milk feed. Cow's milk allergy association with necrotizing enterocolitis has not been well determined, and the pathophysiology is still not clear. Necrotizing enterocolitis is very rare following living donor liver transplant. In our case, a 6-year-old boy who was doing well in the postoperative period had sudden worsening of general condition after he was started on milk feed. On evaluation and reexploration, he was diagnosed with necrotizing enterocolitis and later succumbed to death.


Subject(s)
Enterocolitis, Necrotizing , Liver Transplantation , Milk Hypersensitivity/complications , Animals , Cattle , Child , Enterocolitis, Necrotizing/diagnostic imaging , Enterocolitis, Necrotizing/etiology , Humans , Liver Transplantation/adverse effects , Living Donors , Male , Treatment Outcome
2.
Nanoscale Res Lett ; 9(1): 360, 2014.
Article in English | MEDLINE | ID: mdl-25114651

ABSTRACT

The specific energy of the existing lithium ion battery cells is limited because intercalation electrodes made of activated carbon (AC) materials have limited lithium ion storage capacities. Carbon nanotubes, graphene, and carbon nanofibers are the most sought alternatives to replace AC materials but their synthesis cost makes them highly prohibitive. Silicon has recently emerged as a strong candidate to replace existing graphite anodes due to its inherently large specific capacity and low working potential. However, pure silicon electrodes have shown poor mechanical integrity due to the dramatic expansion of the material during battery operation. This results in high irreversible capacity and short cycle life. We report on the synthesis and use of carbon and hybrid carbon-silicon nanostructures made by a simplified thermo-mechanical milling process to produce low-cost high-energy lithium ion battery anodes. Our work is based on an abundant, cost-effective, and easy-to-launch source of carbon soot having amorphous nature in combination with scrap silicon with crystalline nature. The carbon soot is transformed in situ into graphene and graphitic carbon during mechanical milling leading to superior elastic properties. Micro-Raman mapping shows a well-dispersed microstructure for both carbon and silicon. The fabricated composites are used for battery anodes, and the results are compared with commercial anodes from MTI Corporation. The anodes are integrated in batteries and tested; the results are compared to those seen in commercial batteries. For quick laboratory assessment, all electrochemical cells were fabricated under available environment conditions and they were tested at room temperature. Initial electrochemical analysis results on specific capacity, efficiency, and cyclability in comparison to currently available AC counterpart are promising to advance cost-effective commercial lithium ion battery technology. The electrochemical performance observed for carbon soot material is very interesting given the fact that its production cost is away cheaper than activated carbon. The cost of activated carbon is about $15/kg whereas the cost to manufacture carbon soot as a by-product from large-scale milling of abundant graphite is about $1/kg. Additionally, here, we propose a method that is environmentally friendly with strong potential for industrialization.

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