Sustainable Energy Storage & Recycling UCL - UCL East (Institute for Materials Discovery)

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TABLE Game 1 Game 2 Game 3 Total
Anna 144 123 218 485
Bill 90 175 120 385
Cara 102 214 233 549

It was the best of times it was the worst of times. It was the age of wisdom, it was the age of foolishness. It was the spring of hope, it was the winter of despair.

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Stage Direct Products ATP Yields
Glycolysis
2 ATP  
2 NADH 3–5 ATP
Pyruvaye oxidation 2 NADH 5 ATP
Citric acid cycle

2 ATP  
6 NADH 15 ATP
2 FADH 3 ATP
30–32 ATP    

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List

List citations

2025

A Nonflammable Deep Eutectic Electrolyte for Safe and High-Performance Lithium Iron Phosphate-Lithium Titanium Oxide Cells
Muhammad Hakeem Noor Azleen, Pei-Min Ting, Ziwei Chen, Yanzhuo Li, Yao Shi, Shahab Akhavan, Meriem Anouti, Georgios Nikiforidis
ACS Applied Energy Materials   ·   07 Jul 2025   ·   doi:10.1021/acsaem.5c01337
Exploring Rochelle Salt Aqueous Solutions for Supercapacitors-Transport, Stability, and Performance
Hamza Kahri, Chalal Tachouaft, Yanzhuo Li, Ziwei Chen, Mérièm Anouti, Georgios Nikiforidis
Batteries & Supercaps   ·   21 May 2025   ·   doi:10.1002/batt.202500259

2024

Characterization of Manganese Acetate Hydrate Solutions and Their Potential Use for Energy Storage Applications
C Tachouaft, H Kahri, L Wang, Georgios Nikiforidis, M Anouti
Batteries & Supercaps   ·   17 Jan 2024   ·   doi:10.1002/batt.202300560

2023

Electrocatalytic on-site oxygenation for transplanted cell-based-therapies
I Lee, Georgios Nikiforidis, A Surendran, S Fleury, I Gimino, A Curtiss, C Fell, DJ Shiwarski
Nature communications   ·   09 Nov 2023   ·   doi:10.1038/s41467-023-07019-y
Deep Eutectic Mn(NO3)2−H2O Binary System as a Safe, Cost‐Effective, and Efficient Electrolyte for Supercapacitor Applications
M Raghibi, Georgios Nikiforidis, M Anouti
ChemElectroChem   ·   19 Jun 2023   ·   doi:10.1002/celc.202300183
Lithium‐Ion Batteries Containing Surfactants for the Protection of Graphite Anode against the Passivation Layer Byproducts
F Chrétien, Georgios Nikiforidis, C Damas, M Anouti
ChemElectroChem   ·   12 May 2023   ·   doi:10.1002/celc.202300102

2022

Comparative internal pressure evolution at interfaces of activated carbon for supercapacitors containing electrolytes based on linear and cyclic ammonium tetrafluoroborate
Georgios Nikiforidis, S Phadke, M Anouti
Advanced Materials Interfaces   ·   29 Nov 2022   ·   doi:10.1002/admi.202200204
Cover Feature-Effective Ways to Stabilize Polysulfide Ions for High‐Capacity Li− S Batteries Based on Organic Chalcogenide Catholytes (ChemElectroChem 18/2022)
Georgios Nikiforidis, J Pires, S Phadke, M Anouti
ChemElectroChem   ·   01 Sep 2022   ·   doi:10.1002/celc.202200881
Effective Ways to Stabilize Polysulfide Ions for High‐Capacity Li−S Batteries Based on Organic Chalcogenide Catholytes
Georgios Nikiforidis, J Pires, S Phadke, M Anouti
ChemElectroChem   ·   01 Sep 2022   ·   doi:10.1002/celc.202200571
Performance of PEDOTOH/PEO‐based Supercapacitors in Agarose Gel Electrolyte
S Wustoni, Georgios Nikiforidis, D Ohayon, S Inal, YS Indartono, V Suendo
Chemistry–An Asian Journal   ·   01 Sep 2022   ·   doi:10.1002/celc.202300102
Non‐Flammable Sodium Asymmetric Imide Salt‐Based Deep Eutectic Solvent for Supercapacitor Applications
J Chidiac, Georgios Nikiforidis, L Timperman, M Anouti
ChemPhysChem   ·   13 Jun 2022   ·   doi:10.1002/cphc.202200224
Hydroxymethyl PEDOT microstructure-based electrodes for high-performance supercapacitors
S Wustoni, Georgios Nikiforidis, S Inal, YS Indartono, V Suendo, B Yuliarto
APL Materials   ·   01 Jun 2022   ·   doi:10.1063/5.0036723
Polarizable cesium cations for energy storage from electrolyte characterization to-EDLC application
Georgios Nikiforidis, M El Yagoubi, M Anouti
Electrochimica Acta   ·   01 Jan 2022   ·   doi:10.1016/j.electacta.2022.139529
Anion effect on Li/Na/K hybrid electrolytes for Graphite//NCA (LiNi0.8Co0.15Al0.05O2) Li-ion batteries
A Jrondi, Georgios Nikiforidis, M Anouti
Journal of Energy Chemistry   ·   01 Jan 2022   ·   doi:10.1016/j.jechem.2021.02.012

2021

A Vanadium Redox Flow Battery based on a highly concentrated Protic Ionic Liquid Electrolyte
Georgios Nikiforidis, M Anouti
Journal of Energy Chemistry   ·   01 Nov 2021   ·   doi:10.1016/j.jechem.2021.10.020
Less is More-Ultra Low LiPF6 Concentrated Electrolyte for Efficient Li‐Ion Batteries
Georgios Nikiforidis, M Anouti
Batteries & Supercaps   ·   03 Aug 2021   ·   doi:10.1002/batt.202100289
Phosphonium ionic liquid-based electrolyte for high voltage Li-ion batteries-Effect of ionic liquid ratio
Y Bencherifi, B Larhrib, A Sayegh, Georgios Nikiforidis, M Anouti
Journal of Applied Electrochemistry   ·   30 Jul 2021   ·   doi:10.1007/s10800-021-01551-w
Amide-based deep eutectic solvents containing LiFSI and NaFSI salts as superionic electrolytes for supercapacitor applications
S Amara, W Zaidi, L Timperman, Georgios Nikiforidis, M Anouti
The Journal of Chemical Physics   ·   26 Apr 2021   ·   doi:10.1063/5.0045378
Mixed conduction in an n‐type organic semiconductor in the absence of hydrophilic side‐chains
J Surgailis, A Savva, V Druet, BD Paulsen, R Wu, A Hamidi‐Sakr, Georgios Nikiforidis
Advanced Functional Materials   ·   18 Mar 2021   ·   doi:10.1002/adfm.202010165
Operational Strategies to Improve the Performance and Long‐Term Cyclability of Intermediate Temperature Sodium‐Sulfur Batteries
S Kandhasamy, Georgios Nikiforidis, GJ Jongerden, F Jongerden
ChemElectroChem   ·   10 Mar 2021   ·   doi:10.1002/celc.202200681
Low-concentrated lithium hexafluorophosphate ternary-based electrolyte for a reliable and safe NMC/Graphite Lithium-ion battery
Georgios Nikiforidis, M Raghibi, A Sayegh, M Anouti
The Journal of Physical Chemistry Letters   ·   16 Feb 2021   ·   doi:10.1021/acs.jpclett.1c00125

2020

Benchmarking the Performance of Electropolymerized Poly (3, 4‐ethylenedioxythiophene) Electrodes for Neural Interfacing
Georgios Nikiforidis, S Wustoni, C Routier, A Hama, A Koklu, A Saleh, N Steiner
Macromolecular Bioscience   ·   16 Nov 2020   ·   doi:10.1002/mabi.202000215
A self-standing organic supercapacitor to power bioelectronic devices
Georgios Nikiforidis, S Wustoni, D Ohayon, V Druet, S Inal
ACS Applied Energy Materials   ·   27 Jul 2020   ·   doi:10.1021/acsaem.0c01572
Water stable molecular n-doping produces organic electrochemical transistors with high transconductance and record stability
AF Paterson, A Savva, S Wustoni, L Tsetseris, BD Paulsen, H Faber, Georgios Nikiforidis
Nature communications   ·   12 Jun 2020   ·   doi:10.1038/s41467-020-16817-3

2019

Biofuel powered glucose detection in bodily fluids with an n-type conjugated polymer
D Ohayon, Georgios Nikiforidis, A Savva, A Giugni, S Wustoni, T Palanisamy
Nature materials   ·   16 Dec 2019   ·   doi:10.1038/s41563-020-0601-5
On the role of contact resistance and electrode modification in organic electrochemical transistors
AF Paterson, H Faber, A Savva, Georgios Nikiforidis, M Gedda, TC Hidalgo
Advanced Materials   ·   25 Jul 2019   ·   doi:10.1002/adma.201902291
High and intermediate temperature sodium–sulfur batteries for energy storage_development, challenges and perspectives
Georgios Nikiforidis, MCM Van de Sanden, MN Tsampas
RSC advances   ·   04 Feb 2019   ·   doi:10.1039/C8RA10432H
An electrochemical study on the cathode of the intermediate temperature tubular sodium-sulfur (NaS) battery
Georgios Nikiforidis, GJ Jongerden, EF Jongerden, MCM Van De Sanden, MN Tsampas
Journal of The Electrochemical Society   ·   12 Jan 2019   ·   doi:10.1149/2.0081902jes

2018

Designing Redox‐Stable Cobalt–Polypyridyl Complexes for Redox Flow Batteries_Spin‐Crossover Delocalizes Excess Charge
C Yang, Georgios Nikiforidis, JY Park, J Choi, Y Luo, L Zhang, SC Wang
Advanced Energy Materials   ·   15 May 2018   ·   doi:10.1002/aenm.201702897

2016

High energy efficiency and stability for photoassisted aqueous lithium–iodine redox batteries
Georgios Nikiforidis, K Tajima, HR Byon
ACS Energy Letters   ·   21 Sep 2016   ·   doi:10.1021/acsenergylett.6b00359
Vanadium microfluidic fuel cell with novel multi-layer flow-through porous electrodes-Model, simulations and experiments
L Li, Georgios Nikiforidis, MKH Leung, WA Daoud
Applied energy   ·   01 Sep 2016   ·   doi:10.1016/j.apenergy.2016.05.134

2015

Thermally modified graphite electrodes for the positive side of the zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Journal of the Electrochemical Society   ·   01 Jun 2015   ·   doi:10.1149/2.0011506jes
Indium modified graphite electrodes on highly zinc containing methanesulfonate electrolyte for zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Electrochimica Acta   ·   17 Mar 2015   ·   doi:10.1016/j.electacta.2014.01.103

2014

Electrochemical behavior of carbon paper on cerium methanesulfonate electrolytes for zinc-cerium flow battery
Georgios Nikiforidis, Y Xiang, WA Daoud
Electrochimica Acta   ·   24 Nov 2014   ·   doi:10.1016/j.electacta.2014.01.079
Effect of mixed acid media on the positive side of the hybrid zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Electrochimica Acta   ·   02 Jun 2014   ·   doi:10.1016/j.electacta.2014.01.125
The development of Zn–Ce hybrid redox flow batteries for energy storage and their continuing challenges
FC Walsh, C Ponce de Léon, L Berlouis, Georgios Nikiforidis
ChemPlusChem   ·   27 May 2014   ·   doi:10.1002/cplu.201402066
Factors affecting the performance of the Zn-Ce redox flow battery
Georgios Nikiforidis, R Cartwright, D Hodgson, D Hall, L Berlouis
Electrochimica Acta   ·   04 May 2014   ·   doi:10.1016/j.electacta.2014.01.103
Charge/discharge cycles on Pt and Pt-Ir based electrodes for the positive side of the Zinc-Cerium hybrid redox flow battery
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   10 Apr 2014   ·   doi:10.1016/j.electacta.2014.01.079

2013

An electrochemical study on the positive electrode side of the zinc–cerium hybrid redox flow battery
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   24 Oct 2013   ·   doi:10.1016/j.electacta.2013.11.078
A study of different carbon composite materials for the negative half-cell reaction of the zinc cerium hybrid redox flow cell
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   14 Jun 2013   ·   doi:10.1016/j.electacta.2013.09.054
Impact of electrolyte composition on the performance of the zinc–cerium redox flow battery system
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Journal of power sources   ·   02 Apr 2013   ·   doi:10.1016/j.jpowsour.2013.09.058

2012

Evaluation of carbon composite materials for the negative electrode in the zinc–cerium redox flow cell
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Journal of Power Sources   ·   15 May 2012   ·   doi:10.1016/j.jpowsour.2012.10.008

List projects

Safe, efficient, and cheap LIB electrolytes
Safe, efficient, and cheap LIB electrolytes Projected Cell Characteristics with Novel Fluorinated Ether Derivatives

The use of fluorinated ether derivatives (FED), such as 1,1,2,2-Tetrafluoroethyl 2,2,2-trifluoroethyl ether, has shown potential for improving the solid electrolyte interface (SEI) layer in lithium-ion batteries. The table below outlines the projected cell characteristics with different electrode materials, focusing on enhanced SEI stability, cycle life, energy density, and electrolyte compatibility across various lithium-based materials, including LTO (Li₄Ti₅O₁₂), Li-Metal Oxides (LiCoO₂, LiMn₂O₄, LiNi₁/₃Co₁/₃Mn₁/₃O), and Li-Metal Polyanionic compounds (LiFePO₄, LiMnPO₄).

Sustainable hydrometallurgical recycling of LIBs
Sustainable hydrometallurgical recycling of LIBs Green Leaching Process with Organic Acids for Critical Raw Material Extraction

The proposed recycling process introduces organic acids during the leaching phase to extract high-value metals such as graphite, cobalt, lithium, and copper—identified as critical raw materials (CRMs). Organic acids like oxalate, citric acid, malic acid, and aspartic acid, combined with oxidant agents, offer a greener solution due to their low environmental impact. These acids are biodegradable, produce minimal hazardous waste, and allow selective leaching, making them a sustainable choice for metal extraction from lithium cobalt oxide (LiCoO₂) consumer batteries.

Protic Ionic Liquids for Redox Flow Batteries
Protic Ionic Liquids for Redox Flow Batteries Vanadium Redox Flow Battery with Pyrrolidine and Methanesulfonic Acid Electrolytes

A Vanadium Redox Flow Battery (VRFB) utilizing pyrrolidine and methanesulfonic acid (e.g., PyrrH⁺CH₃SO₃⁻) combined with H₂O at varying mass ratios is proposed as a more functional electrolyte alternative. The formation of highly soluble V⁴⁺ and V³⁺ complexes is attributed to the deprotonation of the displaced pyrrolidinium cation and complexation of the vanadyl cations by the amine ligand. This process enhances the energy density of the redox flow battery by a factor of 2, without the need for additional additives.

Supercapacitors with Protic Ionic Liquids and Deep Eutectic Solvents
Supercapacitors with Protic Ionic Liquids and Deep Eutectic Solvents Ionic Mobility in Aqueous Gel-based Supercapacitors

Supercapacitors (SC) utilizing protic ionic liquids (PIL) and deep eutectic solvents (DES) in both liquid and gel-like forms. The diagram illustrates the mechanism for ionic mobility within an aqueous gel based on polyvinyl alcohol and formamide, combined with a mixture of two nitrate salts, lithium nitrate and pyrrolidinium nitrate. This innovative composition enhances ionic conductivity and energy storage capabilities in supercapacitor systems.

Semi-flow Intermediate Temperature (IT) Metal-Sulfur Battery
Semi-flow Intermediate Temperature (IT) Metal-Sulfur Battery Operation and Redox Reactions for Enhanced Energy Density and Stability

The semi-flow Intermediate Temperature (IT) Metal-Sulfur (M-Na, Li, K) battery integrates flow configuration at the cathode to improve energy density. The redox reaction of dissolved disulfides in the catholyte boosts the specific capacity of the system. The chemical interaction between S₈/Sₓ²⁻ and diorganyl disulfides (e.g., diphenyl disulfide, diethyl disulfide) or thiolate ion stabilizers (e.g., thiophenol, 2,5-dimercapto-1,3,4-thiadiazole) enhances sulfur utilization, suppresses precipitation, and improves both chemical reactivity and cycling stability.

TSu Energy
TSu Energy Provide a data-driven approach to visualize and manage the electrochemical energy system

The phd students’ work

Others2
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List team members


List blog posts

2025

Home-Cooked Harmony

On May 2, Dr. Nikiforidis Georgios, Mr. Yanzhuo Li, Mr. William Chen, Mr. Sijin Liu, and Mr. Haotian Ma met at Sijin’s place for a relaxed evening of cooking and dinner.

The SESR Official Party Bag

On March 18th, members of the SESR group showcased a lighthearted yet iconic creation: the official SESR party bag. Hand-painted with bold letters and bright colors.

Science & Supper:Good Food, Great Company

On White Valentine’s Day, Dr. Nikiforidis Georgios, Mr. Haotian Ma, Mr. William Chen, Mr. Sijin Liu, and Mr. Yanzhuo Li took a break from their busy research schedules to enjoy a group dinner together.

First-Year Doctoral Showcase

MAPS Academy organized this first year showcase, featuring doctoral candidates William Chen and Sijin Liu.

Hotpot for Lantern Festival

We enjoyed our first group lunch to celebrate the Lantern Festival together! It was a festive hotpot gathering where everyone shared their plans and dreams for the coming months—covering everything from exciting research projects to personal goals for the year.

Arrival of PhD Student Yanzhuo Li

We are excited to welcome our new PhD student, Yanzhuo Li, to the group.

2024

Arrival of PhD Students Haotian Ma, Ziwei Chen, and Sijin Liu

We are excited to announce the arrival of new PhD students Haotian Ma, Ziwei Chen, and Sijin Liu to our group. They bring fresh energy and expertise to our ongoing research in electrochemistry. Stay tuned for updates on their contributions and the progress of their work.

Group Website Construction, Maintence and Template Tutorial

This document serves as a comprehensive guide for constructing and managing the website, covering Markdown syntax for creating content, including code blocks, images, links, tables, and headers. The aim is to ensure a smooth user experience and facilitate collaboration within the group.

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Code

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2025

A Nonflammable Deep Eutectic Electrolyte for Safe and High-Performance Lithium Iron Phosphate-Lithium Titanium Oxide Cells
Muhammad Hakeem Noor Azleen, Pei-Min Ting, Ziwei Chen, Yanzhuo Li, Yao Shi, Shahab Akhavan, Meriem Anouti, Georgios Nikiforidis
ACS Applied Energy Materials   ·   07 Jul 2025   ·   doi:10.1021/acsaem.5c01337
Exploring Rochelle Salt Aqueous Solutions for Supercapacitors-Transport, Stability, and Performance
Hamza Kahri, Chalal Tachouaft, Yanzhuo Li, Ziwei Chen, Mérièm Anouti, Georgios Nikiforidis
Batteries & Supercaps   ·   21 May 2025   ·   doi:10.1002/batt.202500259

2024

Characterization of Manganese Acetate Hydrate Solutions and Their Potential Use for Energy Storage Applications
C Tachouaft, H Kahri, L Wang, Georgios Nikiforidis, M Anouti
Batteries & Supercaps   ·   17 Jan 2024   ·   doi:10.1002/batt.202300560

2023

Electrocatalytic on-site oxygenation for transplanted cell-based-therapies
I Lee, Georgios Nikiforidis, A Surendran, S Fleury, I Gimino, A Curtiss, C Fell, DJ Shiwarski
Nature communications   ·   09 Nov 2023   ·   doi:10.1038/s41467-023-07019-y
Deep Eutectic Mn(NO3)2−H2O Binary System as a Safe, Cost‐Effective, and Efficient Electrolyte for Supercapacitor Applications
M Raghibi, Georgios Nikiforidis, M Anouti
ChemElectroChem   ·   19 Jun 2023   ·   doi:10.1002/celc.202300183
Lithium‐Ion Batteries Containing Surfactants for the Protection of Graphite Anode against the Passivation Layer Byproducts
F Chrétien, Georgios Nikiforidis, C Damas, M Anouti
ChemElectroChem   ·   12 May 2023   ·   doi:10.1002/celc.202300102

2022

Comparative internal pressure evolution at interfaces of activated carbon for supercapacitors containing electrolytes based on linear and cyclic ammonium tetrafluoroborate
Georgios Nikiforidis, S Phadke, M Anouti
Advanced Materials Interfaces   ·   29 Nov 2022   ·   doi:10.1002/admi.202200204
Cover Feature-Effective Ways to Stabilize Polysulfide Ions for High‐Capacity Li− S Batteries Based on Organic Chalcogenide Catholytes (ChemElectroChem 18/2022)
Georgios Nikiforidis, J Pires, S Phadke, M Anouti
ChemElectroChem   ·   01 Sep 2022   ·   doi:10.1002/celc.202200881
Effective Ways to Stabilize Polysulfide Ions for High‐Capacity Li−S Batteries Based on Organic Chalcogenide Catholytes
Georgios Nikiforidis, J Pires, S Phadke, M Anouti
ChemElectroChem   ·   01 Sep 2022   ·   doi:10.1002/celc.202200571
Performance of PEDOTOH/PEO‐based Supercapacitors in Agarose Gel Electrolyte
S Wustoni, Georgios Nikiforidis, D Ohayon, S Inal, YS Indartono, V Suendo
Chemistry–An Asian Journal   ·   01 Sep 2022   ·   doi:10.1002/celc.202300102
Non‐Flammable Sodium Asymmetric Imide Salt‐Based Deep Eutectic Solvent for Supercapacitor Applications
J Chidiac, Georgios Nikiforidis, L Timperman, M Anouti
ChemPhysChem   ·   13 Jun 2022   ·   doi:10.1002/cphc.202200224
Hydroxymethyl PEDOT microstructure-based electrodes for high-performance supercapacitors
S Wustoni, Georgios Nikiforidis, S Inal, YS Indartono, V Suendo, B Yuliarto
APL Materials   ·   01 Jun 2022   ·   doi:10.1063/5.0036723
Polarizable cesium cations for energy storage from electrolyte characterization to-EDLC application
Georgios Nikiforidis, M El Yagoubi, M Anouti
Electrochimica Acta   ·   01 Jan 2022   ·   doi:10.1016/j.electacta.2022.139529
Anion effect on Li/Na/K hybrid electrolytes for Graphite//NCA (LiNi0.8Co0.15Al0.05O2) Li-ion batteries
A Jrondi, Georgios Nikiforidis, M Anouti
Journal of Energy Chemistry   ·   01 Jan 2022   ·   doi:10.1016/j.jechem.2021.02.012

2021

A Vanadium Redox Flow Battery based on a highly concentrated Protic Ionic Liquid Electrolyte
Georgios Nikiforidis, M Anouti
Journal of Energy Chemistry   ·   01 Nov 2021   ·   doi:10.1016/j.jechem.2021.10.020
Less is More-Ultra Low LiPF6 Concentrated Electrolyte for Efficient Li‐Ion Batteries
Georgios Nikiforidis, M Anouti
Batteries & Supercaps   ·   03 Aug 2021   ·   doi:10.1002/batt.202100289
Phosphonium ionic liquid-based electrolyte for high voltage Li-ion batteries-Effect of ionic liquid ratio
Y Bencherifi, B Larhrib, A Sayegh, Georgios Nikiforidis, M Anouti
Journal of Applied Electrochemistry   ·   30 Jul 2021   ·   doi:10.1007/s10800-021-01551-w
Amide-based deep eutectic solvents containing LiFSI and NaFSI salts as superionic electrolytes for supercapacitor applications
S Amara, W Zaidi, L Timperman, Georgios Nikiforidis, M Anouti
The Journal of Chemical Physics   ·   26 Apr 2021   ·   doi:10.1063/5.0045378
Mixed conduction in an n‐type organic semiconductor in the absence of hydrophilic side‐chains
J Surgailis, A Savva, V Druet, BD Paulsen, R Wu, A Hamidi‐Sakr, Georgios Nikiforidis
Advanced Functional Materials   ·   18 Mar 2021   ·   doi:10.1002/adfm.202010165
Operational Strategies to Improve the Performance and Long‐Term Cyclability of Intermediate Temperature Sodium‐Sulfur Batteries
S Kandhasamy, Georgios Nikiforidis, GJ Jongerden, F Jongerden
ChemElectroChem   ·   10 Mar 2021   ·   doi:10.1002/celc.202200681
Low-concentrated lithium hexafluorophosphate ternary-based electrolyte for a reliable and safe NMC/Graphite Lithium-ion battery
Georgios Nikiforidis, M Raghibi, A Sayegh, M Anouti
The Journal of Physical Chemistry Letters   ·   16 Feb 2021   ·   doi:10.1021/acs.jpclett.1c00125

2020

Benchmarking the Performance of Electropolymerized Poly (3, 4‐ethylenedioxythiophene) Electrodes for Neural Interfacing
Georgios Nikiforidis, S Wustoni, C Routier, A Hama, A Koklu, A Saleh, N Steiner
Macromolecular Bioscience   ·   16 Nov 2020   ·   doi:10.1002/mabi.202000215
A self-standing organic supercapacitor to power bioelectronic devices
Georgios Nikiforidis, S Wustoni, D Ohayon, V Druet, S Inal
ACS Applied Energy Materials   ·   27 Jul 2020   ·   doi:10.1021/acsaem.0c01572
Water stable molecular n-doping produces organic electrochemical transistors with high transconductance and record stability
AF Paterson, A Savva, S Wustoni, L Tsetseris, BD Paulsen, H Faber, Georgios Nikiforidis
Nature communications   ·   12 Jun 2020   ·   doi:10.1038/s41467-020-16817-3

2019

Biofuel powered glucose detection in bodily fluids with an n-type conjugated polymer
D Ohayon, Georgios Nikiforidis, A Savva, A Giugni, S Wustoni, T Palanisamy
Nature materials   ·   16 Dec 2019   ·   doi:10.1038/s41563-020-0601-5
On the role of contact resistance and electrode modification in organic electrochemical transistors
AF Paterson, H Faber, A Savva, Georgios Nikiforidis, M Gedda, TC Hidalgo
Advanced Materials   ·   25 Jul 2019   ·   doi:10.1002/adma.201902291
High and intermediate temperature sodium–sulfur batteries for energy storage_development, challenges and perspectives
Georgios Nikiforidis, MCM Van de Sanden, MN Tsampas
RSC advances   ·   04 Feb 2019   ·   doi:10.1039/C8RA10432H
An electrochemical study on the cathode of the intermediate temperature tubular sodium-sulfur (NaS) battery
Georgios Nikiforidis, GJ Jongerden, EF Jongerden, MCM Van De Sanden, MN Tsampas
Journal of The Electrochemical Society   ·   12 Jan 2019   ·   doi:10.1149/2.0081902jes

2018

Designing Redox‐Stable Cobalt–Polypyridyl Complexes for Redox Flow Batteries_Spin‐Crossover Delocalizes Excess Charge
C Yang, Georgios Nikiforidis, JY Park, J Choi, Y Luo, L Zhang, SC Wang
Advanced Energy Materials   ·   15 May 2018   ·   doi:10.1002/aenm.201702897

2016

High energy efficiency and stability for photoassisted aqueous lithium–iodine redox batteries
Georgios Nikiforidis, K Tajima, HR Byon
ACS Energy Letters   ·   21 Sep 2016   ·   doi:10.1021/acsenergylett.6b00359
Vanadium microfluidic fuel cell with novel multi-layer flow-through porous electrodes-Model, simulations and experiments
L Li, Georgios Nikiforidis, MKH Leung, WA Daoud
Applied energy   ·   01 Sep 2016   ·   doi:10.1016/j.apenergy.2016.05.134

2015

Thermally modified graphite electrodes for the positive side of the zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Journal of the Electrochemical Society   ·   01 Jun 2015   ·   doi:10.1149/2.0011506jes
Indium modified graphite electrodes on highly zinc containing methanesulfonate electrolyte for zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Electrochimica Acta   ·   17 Mar 2015   ·   doi:10.1016/j.electacta.2014.01.103

2014

Electrochemical behavior of carbon paper on cerium methanesulfonate electrolytes for zinc-cerium flow battery
Georgios Nikiforidis, Y Xiang, WA Daoud
Electrochimica Acta   ·   24 Nov 2014   ·   doi:10.1016/j.electacta.2014.01.079
Effect of mixed acid media on the positive side of the hybrid zinc-cerium redox flow battery
Georgios Nikiforidis, WA Daoud
Electrochimica Acta   ·   02 Jun 2014   ·   doi:10.1016/j.electacta.2014.01.125
The development of Zn–Ce hybrid redox flow batteries for energy storage and their continuing challenges
FC Walsh, C Ponce de Léon, L Berlouis, Georgios Nikiforidis
ChemPlusChem   ·   27 May 2014   ·   doi:10.1002/cplu.201402066
Factors affecting the performance of the Zn-Ce redox flow battery
Georgios Nikiforidis, R Cartwright, D Hodgson, D Hall, L Berlouis
Electrochimica Acta   ·   04 May 2014   ·   doi:10.1016/j.electacta.2014.01.103
Charge/discharge cycles on Pt and Pt-Ir based electrodes for the positive side of the Zinc-Cerium hybrid redox flow battery
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   10 Apr 2014   ·   doi:10.1016/j.electacta.2014.01.079

2013

An electrochemical study on the positive electrode side of the zinc–cerium hybrid redox flow battery
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   24 Oct 2013   ·   doi:10.1016/j.electacta.2013.11.078
A study of different carbon composite materials for the negative half-cell reaction of the zinc cerium hybrid redox flow cell
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Electrochimica Acta   ·   14 Jun 2013   ·   doi:10.1016/j.electacta.2013.09.054
Impact of electrolyte composition on the performance of the zinc–cerium redox flow battery system
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Journal of power sources   ·   02 Apr 2013   ·   doi:10.1016/j.jpowsour.2013.09.058

2012

Evaluation of carbon composite materials for the negative electrode in the zinc–cerium redox flow cell
Georgios Nikiforidis, L Berlouis, D Hall, D Hodgson
Journal of Power Sources   ·   15 May 2012   ·   doi:10.1016/j.jpowsour.2012.10.008

Grid of blog posts

2025

Home-Cooked Harmony

On May 2, Dr. Nikiforidis Georgios, Mr. Yanzhuo Li, Mr. William Chen, Mr. Sijin Liu, and Mr. Haotian Ma met at Sijin’s place for a relaxed evening of cooking and dinner.

The SESR Official Party Bag

On March 18th, members of the SESR group showcased a lighthearted yet iconic creation: the official SESR party bag. Hand-painted with bold letters and bright colors.

Science & Supper:Good Food, Great Company

On White Valentine’s Day, Dr. Nikiforidis Georgios, Mr. Haotian Ma, Mr. William Chen, Mr. Sijin Liu, and Mr. Yanzhuo Li took a break from their busy research schedules to enjoy a group dinner together.

First-Year Doctoral Showcase

MAPS Academy organized this first year showcase, featuring doctoral candidates William Chen and Sijin Liu.

Hotpot for Lantern Festival

We enjoyed our first group lunch to celebrate the Lantern Festival together! It was a festive hotpot gathering where everyone shared their plans and dreams for the coming months—covering everything from exciting research projects to personal goals for the year.

Arrival of PhD Student Yanzhuo Li

We are excited to welcome our new PhD student, Yanzhuo Li, to the group.

2024

Arrival of PhD Students Haotian Ma, Ziwei Chen, and Sijin Liu

We are excited to announce the arrival of new PhD students Haotian Ma, Ziwei Chen, and Sijin Liu to our group. They bring fresh energy and expertise to our ongoing research in electrochemistry. Stay tuned for updates on their contributions and the progress of their work.

Group Website Construction, Maintence and Template Tutorial

This document serves as a comprehensive guide for constructing and managing the website, covering Markdown syntax for creating content, including code blocks, images, links, tables, and headers. The aim is to ensure a smooth user experience and facilitate collaboration within the group.

Cols

Text

Lorem ipsum dolor sit amet, consectetur adipiscing elit, sed do eiusmod tempor incididunt ut labore et dolore magna aliqua.

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Lorem ipsum dolor sit amet, consectetur adipiscing elit, sed do eiusmod tempor incididunt ut labore et dolore magna aliqua. Nulla facilisi etiam dignissim diam quis. Id aliquet lectus proin nibh nisl condimentum id venenatis a. Tristique magna sit amet purus gravida quis blandit turpis cursus. Ultrices eros in cursus turpis massa tincidunt dui ut ornare. A cras semper auctor neque vitae tempus quam pellentesque nec. At tellus at urna condimentum mattis pellentesque. Ipsum consequat nisl vel pretium. Ultrices mi tempus imperdiet nulla malesuada pellentesque elit eget gravida. Integer vitae justo eget magna fermentum iaculis eu non diam. Mus mauris vitae ultricies leo integer malesuada nunc vel. Leo integer malesuada nunc vel risus. Ornare arcu odio ut sem nulla pharetra. Purus semper eget duis at tellus at urna condimentum. Enim neque volutpat ac tincidunt vitae semper quis lectus.

Images

Fig. 1a
Fig. 1a

Lorem ipsum dolor sit amet, consectetur adipiscing elit, sed do eiusmod tempor incididunt ut labore et dolore magna aliqua.

Fig. 1b
Fig. 1b

Lorem ipsum dolor sit amet, consectetur adipiscing elit, sed do eiusmod tempor incididunt ut labore et dolore magna aliqua.

Fig. 1c
Fig. 1c

Lorem ipsum dolor sit amet, consectetur adipiscing elit, sed do eiusmod tempor incididunt ut labore et dolore magna aliqua.

Code

const test = "Lorem ipsum dolor sit amet";
const test = "Lorem ipsum dolor sit amet";
const test = "Lorem ipsum dolor sit amet";