CENIMAT/I3N, Departamento de Ciência dos Materiais, Faculdade de Ciências e Tecnologia, FCT, Universidade Nova de Lisboa and CEMOP/UNINOVA, 2829-516 Caparica, Portugal.
Biosens Bioelectron. 2011 Jan 15;26(5):2742-5. doi: 10.1016/j.bios.2010.09.055. Epub 2010 Oct 8.
The present work proposes the development of a bio-battery composed by an ultrathin monolithic structure of an electrospun cellulose acetate membrane, over which was deposited metallic thin film electrodes by thermal evaporation on both surfaces. The electrochemical characterization of the bio-batteries was performed under simulated body fluids like sweat and blood plasma [salt solution--0.9% (w/w) NaCl]. Reversible electrochemical reactions were detected through the cellulose acetate structure. Thus, a stable electrochemical behavior was achieved for a bio-battery with silver and aluminum thin films as electrodes. This device exhibits the ability to supply a power density higher than 3 μW cm(-2). Finally, a bio-battery prototype was tested on a sweated skin, demonstrating the potential of applicability of this bio-device as a micropower source.
本工作提出了一种生物电池的开发,该电池由一个超薄的静电纺丝醋酸纤维素膜组成,在其两面通过热蒸发沉积了金属薄膜电极。在模拟体液(如汗液和血浆[盐溶液-0.9%(w/w)NaCl])中对生物电池进行了电化学表征。通过醋酸纤维素结构检测到可逆的电化学反应。因此,以银和铝薄膜作为电极的生物电池实现了稳定的电化学行为。该装置表现出提供高于 3 μW cm(-2)的功率密度的能力。最后,在出汗的皮肤上测试了一个生物电池原型,证明了这种生物器件作为微电源的应用潜力。