Effects of flow-rate, inoculum and time on the internal resistance of microbial fuel cells I Ieropoulos, J Winfield, J Greenman Bioresource technology 101 (10), 3520-3525, 2010 | 280 | 2010 |
A review into the use of ceramics in microbial fuel cells J Winfield, I Gajda, J Greenman, I Ieropoulos Bioresource technology 215, 296-303, 2016 | 196 | 2016 |
The overshoot phenomenon as a function of internal resistance in microbial fuel cells J Winfield, I Ieropoulos, J Greenman, J Dennis Bioelectrochemistry 81 (1), 22-27, 2011 | 153 | 2011 |
Comparing the short and long term stability of biodegradable, ceramic and cation exchange membranes in microbial fuel cells J Winfield, LD Chambers, J Rossiter, I Ieropoulos Bioresource technology 148, 480-486, 2013 | 102 | 2013 |
Comparing terracotta and earthenware for multiple functionalities in microbial fuel cells J Winfield, J Greenman, D Huson, I Ieropoulos Bioprocess and biosystems engineering 36, 1913-1921, 2013 | 98 | 2013 |
Cast and 3D printed ion exchange membranes for monolithic microbial fuel cell fabrication H Philamore, J Rossiter, P Walters, J Winfield, I Ieropoulos Journal of Power Sources 289, 91-99, 2015 | 89 | 2015 |
Scaling-up of a novel, simplified MFC stack based on a self-stratifying urine column XA Walter, I Gajda, S Forbes, J Winfield, J Greenman, I Ieropoulos Biotechnology for Biofuels 9, 1-11, 2016 | 83 | 2016 |
Investigating a cascade of seven hydraulically connected microbial fuel cells J Winfield, I Ieropoulos, J Greenman Bioresource technology 110, 245-250, 2012 | 76 | 2012 |
Biodegradation and proton exchange using natural rubber in microbial fuel cells J Winfield, I Ieropoulos, J Rossiter, J Greenman, D Patton Biodegradation 24, 733-739, 2013 | 75 | 2013 |
Urine-activated origami microbial fuel cells to signal proof of life J Winfield, LD Chambers, J Rossiter, J Greenman, I Ieropoulos Journal of Materials Chemistry A 3 (13), 7058-7065, 2015 | 74 | 2015 |
Here today, gone tomorrow: biodegradable soft robots J Rossiter, J Winfield, I Ieropoulos Electroactive polymer actuators and devices (EAPAD) 2016 9798, 312-321, 2016 | 66 | 2016 |
The power of glove: Soft microbial fuel cell for low-power electronics J Winfield, LD Chambers, A Stinchcombe, J Rossiter, I Ieropoulos Journal of Power Sources 249, 327-332, 2014 | 65 | 2014 |
From the lab to the field: Self-stratifying microbial fuel cells stacks directly powering lights XA Walter, J You, J Winfield, U Bajarunas, J Greenman, IA Ieropoulos Applied energy 277, 115514, 2020 | 58 | 2020 |
Urine in bioelectrochemical systems: an overall review C Santoro, MJS Garcia, XA Walter, J You, P Theodosiou, I Gajda, O Obata, ... ChemElectroChem 7 (6), 1312-1331, 2020 | 58 | 2020 |
Investigating the effects of fluidic connection between microbial fuel cells J Winfield, I Ieropoulos, J Greenman, J Dennis Bioprocess and biosystems engineering 34, 477-484, 2011 | 42 | 2011 |
Biodegradable and edible gelatine actuators for use as artificial muscles LD Chambers, J Winfield, I Ieropoulos, J Rossiter Electroactive Polymer Actuators and Devices (EAPAD) 2014 9056, 46-51, 2014 | 36 | 2014 |
Fade to green: a biodegradable stack of microbial fuel cells J Winfield, LD Chambers, J Rossiter, A Stinchcombe, XA Walter, ... ChemSusChem 8 (16), 2705-2712, 2015 | 33 | 2015 |
Supercapacitive paper based microbial fuel cell: high current/power production within a low cost design C Santoro, J Winfield, P Theodosiou, I Ieropoulos Bioresource technology reports 7, 100297, 2019 | 32 | 2019 |
Towards disposable microbial fuel cells: natural rubber glove membranes J Winfield, LD Chambers, J Rossiter, J Greenman, I Ieropoulos International journal of hydrogen energy 39 (36), 21803-21810, 2014 | 32 | 2014 |
Small scale microbial fuel cells and different ways of reporting output IA Ieropoulos, J Winfield, J Greenman, C Melhuish ECS Transactions 28 (9), 1, 2010 | 32 | 2010 |