RESUMO
This study aims to describe the perception of need for same-sex and same-race mentorship and role models at evolving stages of a medical career and to explore whether these differences affect career choices within the field of medicine. A total of 326 medical students, 309 resident physicians, and 200 faculty attending physicians at the University of California, Davis School of Medicine completed an online survey focused on their perceived value of same-sex and same-race mentorship throughout their stages of medical training and practice. The top three factors influencing specialty choice were lifestyle, time commitment, and supportive department. Although most respondents did not believe same-sex or same-race mentors or role models influenced their specialty choice, there were significant differences in the perceived importance and value of gender or race concordance between male versus female and white versus nonwhite populations. (Journal of Surgical Orthopaedic Advances 33(1):041-048, 2024).
Assuntos
Escolha da Profissão , Mentores , Estudantes de Medicina , Humanos , Masculino , Feminino , Estudantes de Medicina/psicologia , Docentes de Medicina/psicologia , Inquéritos e Questionários , Internato e Residência , Adulto , Atitude do Pessoal de SaúdeRESUMO
Fabric-based microfluidic fuel cells (MFCs) serve as a novel, cost-efficient alternative to traditional FCs and batteries, since fluids naturally travel across fabric via capillary action, eliminating the need for an external pump and lowering production and operation costs. Building on previous research with Y-shaped paper-based MFCs, fabric-based MFCs mitigate fragility and durability issues caused by long periods of fuel immersion. In this study, we describe a microfluidic fabric-based direct formate fuel cell, with 5 M potassium formate and 30% hydrogen peroxide as the anode fuel and cathode oxidant, respectively. Using a two-strip, stacked design, the optimized parameters include the type of encasement, the barrier, and the fabric type. Surface contact of the fabric and laminate sheet expedited flow and respective chemical reactions. The maximum current (22.83 mA/cm2 ) and power (4.40 mW/cm2 ) densities achieved with a 65% cotton/35% polyester blend material are a respective 8.7% and 32% higher than previous studies with Y-shaped paper-based MFCs. In series configuration, the MFCs generate sufficient energy to power a handheld calculator, a thermometer, and a spectrum of light-emitting diodes.
Assuntos
Fontes de Energia Elétrica/tendências , Formiatos , Microfluídica/instrumentação , Têxteis , Fontes de Energia Elétrica/economia , Desenho de Equipamento , Peróxido de Hidrogênio/química , Microfluídica/métodos , PapelRESUMO
Paper-based microfluidic fuel cells (MFCs) are a potential replacement for traditional FCs and batteries due to their low cost, portability, and simplicity to operate. In MFCs, separate solutions of fuel and oxidant migrate through paper due to capillary action and laminar flow and, upon contact with each other and catalyst, produce electricity. In the present work, we describe an improved microfluidic paper-based direct formate FC (DFFC) employing formate and hydrogen peroxide as the anode fuel and cathode oxidant, respectively. The dimensions of the lateral column, current collectors, and cathode were optimized. A maximum power density of 2.53 mW/cm(2) was achieved with a DFFC of surface area 3.0 cm(2) , steel mesh as current collector, 5% carbon to paint mass ratio for cathode electrode and, 30% hydrogen peroxide. The longevity of the MFC's detailed herein is greater than eight hours with continuous flow of streams. In a series configuration, the MFCs generate sufficient energy to power light-emitting diodes and a handheld calculator.
Assuntos
Fontes de Energia Elétrica , Formiatos/química , Microfluídica/instrumentação , Papel , Desenho de Equipamento , OxirreduçãoRESUMO
We describe the first direct formate fuel cell on a paper microfluidic platform. In traditional membrane-less microfluidic fuel cells (MFCs), external pumping consumes power produced by the fuel cell in order to maintain co-laminar flow of the anode stream and oxidant stream to prevent mixing. However, in paper microfluidics, capillary action drives flow while minimizing stream mixing. In this work, we demonstrate a paper MFC that uses formate and hydrogen peroxide as the anode fuel and cathode oxidant, respectively. Using these materials we achieve a maximum power density of nearly 2.5 mW/mg Pd. In a series configuration, our MFC achieves an open circuit voltage just over 1 V, and in a parallel configuration, short circuit of 20 mA absolute current. We also demonstrate that the MFC does not require continuous flow of fuel and oxidant to produce power. We found that we can pre-saturate the materials on the paper, stop the electrolyte flow, and still produce approximately 0.5 V for 15 min. This type of paper MFC has potential applications in point-of-care diagnostic devices and other electrochemical sensors.