Energy Materials

The Research Department Energy Materials explores electrochemical materials for sustainable energy storage, innovative water technologies, and eco-friendly recycling solutions.

The Research Department Energy Materials develops materials that can effectively transport and store ions and electrical charges across several length scales. We develop materials that can effectively transport and store ions and electrical charges across several length scales o. Important electrode materials are nanoporous carbons, oxides, carbides, and sulfides, and their hybrids. A key feature is our streamlined workflow from material synthesis, comprehensive structural and chemical material characterization, electrochemical benchmarking, and complementary in situ analysis.

A particular focus is on 2D materials, especially MXene and MBene, to enable rapid charge/discharge supercapacitors and next-next-generation sodium- and lithium-ion batteries. The reversible uptake and controlled release of ions also enables the desalination of seawater and ion separation to separate pollutants such as lead or recover valuable materials such as lithium.

We use various characterization methods, including in situ, for a comprehensive mechanistic understanding. In addition, we are increasingly using digital methods for predictive materials research and digital twinning of battery research. Our collaborations include international basic research as well as industrial projects.

Prof. Dr. Volker Presser
Prof. Dr. Volker Presser
Head of Energy Materials

Kontakt

B.Sc. Anna Seltmann
Technician
Phone: +49 (0)681-9300-230
Laboratory Safety Officer
M.Sc. Zeyu Fu
Technician
Phone: +49 (0)681-9300-368
Secretary
Sylvia de Graaf
Secretary
Phone: +49 (0)681-9300-501
Team Members
Doctoral Student
Phone: +49 (0)681-9300-151
E-mail: peter.burger@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-218
E-mail: jean.ruthes@leibniz-inm.de
Technician
Phone: +49 (0)681-9300-368
E-mail: zeyu.fu@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-365
E-mail: ayush.gadpayle@leibniz-inm.de
Research Assistant
Phone: +49 (0)681-9300-108/251
E-mail: matthias.haller@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-208
E-mail: nicolas.huth@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-374
E-mail: cansu.koek@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-268
E-mail: chiraz.layouni@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-374
E-mail: Thao.Le@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-230
E-mail: mingren.liu@leibniz-inm.de
Graduate Student
Phone: +49 (0)681-9300-108/251
E-mail: matthew.lowson@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-208
E-mail: meenu.meenu@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-314
E-mail: said.mondahchouo@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-402
E-mail: burak.oelmez@leibniz-inm.de
Head of Energy Materials
E-mail: Volker.Presser@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-218
E-mail: asia.sarycheva@leibniz-inm.de
Student Assistant
Phone: +49 (0)681-9300-108/251
E-mail: louisa.schoendorf@leibniz-inm.de
Grant Recipient
Phone: +49 (0)681-9300-365
E-mail: yassine.seffar@leibniz-inm.de
Technician
Phone: +49 (0)681-9300-230
E-mail: anna.seltmann@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-319
E-mail: burcu.tan@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-365
E-mail: Delvina.Tarimo@leibniz-inm.de
Research Scientist
Phone: +49 (0)681-9300-402
E-mail: bin.wang@leibniz-inm.de
Grant Recipient
Phone: +49 (0)681-9300-151
E-mail: wensen.wang@leibniz-inm.de
Doctoral Student
Phone: +49 (0)681-9300-268
E-mail: liying.xue@leibniz-inm.de
Research

Material synthesis

Our team specializes in developing, analyzing, and applying electrochemically active materials and interfaces, focusing on integrating electrochemical activity with electrical conductivity through advanced hybrid materials. We utilize techniques such as sol-gel processes, atomic layer deposition, and electrospinning, supported by comprehensive characterization tools like electron microscopy, X-ray diffraction, and spectroscopy. We extend our work to in situ and in operando methods to deepen our understanding of these materials. Our expertise encompasses a wide array of materials, including carbon and 2D materials like carbon onions and MXene, as well as diverse metal oxides and conversion materials.

Researcher in a laboratory wearing safety goggles, gloves, and a lab coat pours liquid from one flask into an Erlenmeyer flask and observes the reaction.
Researcher in a laboratory wearing gloves and a lab coat adjusts components and wires inside an open technical testing or measurement device.

Energy storage

Electrochemical energy storage is at the core of sustainable technologies to store, convert, and recover energy. Our research team explores next-generation electrode materials for Sodium- and Lithium-ion batteries, advanced supercapacitors, and novel hybrid systems. A particular focus is on next-next generation electrode materials, including MXene, high-entropy materials, and nanoscaled hybrid materials. We capitalize on an array of synthesis and characterization methods to employ intercalation, conversion reactions, and alloying reactions for boosting the charge storage capacity and charge/discharge rates. Digitalization, digital twinning, and modelling of energy materials and electrode fabrication complements our research portfolio, including basic research and industrial partnerships.

Water technologies

Energy materials are not just prime candidates for electrochemical energy storage but also are gateways to novel water technologies. Via processes much like for batteries and supercapacitors, that is, redox processes (ion intercalation, alloying and conversion reactions) and ion electrosorption, we can manage the flow of ions. We can selectively immobilize and extract specific ions and drive that process not by high pressure or membrane filtration, but by electrochemical processes and ion selective materials. Our key research activities include general seawater desalination, Lithium-ion extraction, and heavy metal ion removal. Our vision is to have electrochemical processes for an array of elements and compounds for energy-efficient deionization toward circular material use, local elemental harvesting, and pollutant removal.

Schematic illustration of a porous material in water capturing dissolved ions; sodium and chloride ions are shown as spheres in the water
Projects funded by the European Regional Development Fund (ERDF)

Continuous Electrochemical Lithium Extraction (eLiFlow)

The energy transition and the rise of electromobility are driving a significant increase in the demand for lithium-ion batteries. At the same time, lithium as a raw material is geographically limited, and traditional extraction methods—particularly conventional mining—are associated with high energy and water consumption. Consequently, alternative and more sustainable sources and processes are gaining importance. These include geothermal waters as well as lithium-bearing process waters and hydrometallurgical solutions derived from battery recycling.

As part of the eLiFlow project, the INM is developing a continuous electrochemical process designed for the highly selective separation of lithium ions from aqueous media and their recovery in a concentrated product solution. The core of this technology is a redox flow cell featuring lithium-ion-selective ceramic and hybrid membranes, alongside circulating redox electrolytes. This approach enables the separation of lithium ions without the intensive use of chemicals.

The primary objectives of the project are:

  • The development of novel lithium-ion-selective membranes.
  • The establishment of environmentally friendly redox electrolytes based on organic compounds.
  • The investigation of realistic model solutions from battery recycling and lithium-bearing waters.

The eLiFlow cell is being optimized with regard to selectivity, energy requirements, long-term stability, and economic viability. The anticipated results are intended to provide the foundation for the future scaling of this technology and the establishment of regional lithium value chains in the Saarland.

The project “eLiFlow – Continuous Electrochemical Lithium Extraction” is funded by the European Union through the European Regional Development Fund (ERDF). Further information on funding provided by the European Union and the ERDF can be found here:

https://www.saarland.de/DE/portale/eu-foerderportal/strukturfondsfoerderung/efre/efre20212027

Funding banner with logos and wordmarks of the European Union, the European Regional Development Fund in Saarland, and the Saarland Ministry for Economic Affairs, Innovation, Digital Affairs and Energy.

Publications

2022
Design of high-performance antimony/MXene hybrid electrodes for sodium-ion batteries

Arnold, Stefanie | Gentile, Antonio | Li, Yunjie | Wang, Qingsong | Marchionna, Stefano | Ruffo, Riccardo | Presser, Volker

DOI:

Due to their versatile properties and excellent electrical conductivity, MXenes have become attractive materials for alkali metal-ion batteries. However, as the capacity is limited to lower values due to the intercalation mechanism, these materials can hardly keep up in the ever-fast-growing community of battery research. Antimony has a promisingly high theoretical sodiation capacity characterized by an alloying reaction. The main drawback of this type of battery material is related to the high volume changes during cycling, often leading to electrode cracking and pulverization, resulting in poor electrochemical performance. A synergistic effect of combing antimony and MXene can be expected to obtain an optimized electrochemical system to overcome capacity fading of antimony while taking advantage of MXene charge storage ability. In this work, variation of the synthesis parameters and material design strategy have been dedicated to achieving the optimized antimony/MXene hybrid electrodes for high-performance sodium-ion batteries. The optimized performance does not align with the highest amount of antimony, the smallest nanoparticles, or the largest interlayer distance of MXene but with the most homogeneous distribution of antimony and MXene while both components remain electrochemically addressable. As a result, the electrode with 40 mass% MXene, not previously expanded, etched with 5 mass% HF and 60% antimony synthesized on the surfaces of MXene emerged as the best electrode. We obtained a high reversible capacity of 450 mA h g−1 at 0.1 A g−1 with a capacity retention of around 96% after 100 cycles with this hybrid material. Besides the successful cycling stability, this material also exhibits high rate capability with a capacity of 365 mA h g−1 at 4 A g−1. In situ XRD measurements and post mortem analysis were used to investigate the reaction mechanism.

DOI:

Journal of Materials Chemistry A ,
2022, 10 (19), 10569-10585.

OPEN ACCESS
Nanoporous Block Copolymer Membranes with Enhanced Solvent Resistance Via UV-Mediated Cross-Linking Strategies

Frieß, Florian V. | Hu, Qiwei | Mayer, Jannik | Gemmer, Lea | Presser, Volker | Balzer, Bizan N. | Gallei, Markus

DOI:

In this work, a block copolymer (BCP) consisting of poly((butyl methacrylate-co-benzophenone methacrylate-co-methyl methacrylate)-block-(2-hydroxyethyl methacrylate)) (P(BMA-co-BPMA-co-MMA)-b-P(HEMA)) is prepared by a two-step atom-transfer radical polymerization (ATRP) procedure. BCP membranes are fabricated applying the self-assembly and nonsolvent induced phase separation (SNIPS) process from a ternary solvent mixture of tetrahydrofuran (THF), 1,4-dioxane, and dimethylformamide (DMF). The presence of a porous top layer of the integral asymmetric membrane featuring pores of about 30 nm is confirmed via scanning electron microscopy (SEM). UV-mediated cross-linking protocols for the nanoporous membrane are adjusted to maintain the open and isoporous top layer. The swelling capability of the noncross-linked and cross-linked BCP membranes is investigated in water, water/ethanol mixture (1:1), and pure ethanol using atomic force microscopy, proving a stabilizing effect of the UV cross-linking on the porous structures. Finally, the influence of the herein described cross-linking protocols on water-flux measurements for the obtained membranes is explored. As a result, an increased swelling resistance for all tested solvents is found, leading to an increased water flux compared to the pristine membrane. The herein established UV-mediated cross-linking protocol is expected to pave the way to a new generation of porous and stabilized membranes within the fields of separation technologies.

DOI:

Macromolecular Rapid Communications ,
2022, 43 (3), 2100632.

OPEN ACCESS
Recent advances in wastewater treatment using semiconductor photocatalysts

Hong, Jaeyoung | Cho, Ki-Hyun | Presser, Volker | Su, Xiao

DOI:

Semiconductor materials demonstrate promising potential for wastewater treatment due to their photocatalytic properties, which can be controlled through the design of the bandgap structure. The photogenerated electron and hole in semiconductor materials provide efficient oxidation/reduction performance for the degradation of pollutants, either directly or indirectly, through the generation of reactive species. Photocatalytic degradation has been utilized to treat contaminants ranging from dyes, chemical precursors, and pharmaceuticals, to diverse organic and inorganic waste. Over the past few years, advances in functional materials have achieved wider light absorption ranges and extended charge carrier lifetime through the doping of heteroatoms or the formation of heterojunctions. Despite these advances, innovative strategies are required to target emerging contaminants with environmental persistence, such as perfluorinated compounds, and improve the efficiency of these nanomaterials in real water matrices in the presence of multicomponent interfering ions. In this review, recent advances on the application of semiconductor catalysts for wastewater treatment and environmental remediation are reviewed, and new approaches that may overcome the current limitations are discussed.

DOI:

Current Opinion in Green and Sustainable Chemistry ,
2022, 36 100644.

Layered Titanium Niobium Oxides Derived from Solid-Solution Ti–Nb Carbides (MXene) as Anode Materials for Li-Ion Batteries

Husmann, Samantha | Besch, Marie | Ying, Bixian | Tabassum, Anika | Naguib, Michael | Presser, Volker

DOI:

Mixed-metal oxides (MMOx), oxides with more than one (transition) metal, provide versatile structural and electrochemical properties well exploited in energy conversion and electrochemical energy storage. The preparation of MMOx from single-source precursors benefits from homogeneous composition and uniform metal distribution. Herein, we describe layered mixed-metal carbides (MXenes) as templates to prepare MMOx. Through thermal oxidation of TiNb-based MXenes in CO2, mixtures of Ti and Nb oxides were produced. The Ti-to-Nb ratio in the MXene significantly affects the derived oxide composition but does not show a direct stoichiometric relation between them. At higher Ti ratios, oxide mixtures of TiO2 and titanium niobium oxide are obtained, while with Nb excess, only MMOx are produced. Multilayer MXenes retain carbon upon oxidation and produce TiNbOx/C hybrids, while delaminated MXenes lead to pure TiNbOx. When tested as Li-ion battery electrodes, the multilayer MXene-derived MMOx with Ti/Nb = 1:5 presented 226 mAh·g–1 at 10 mA·g–1 and 75% retention after 1000 cycles at 1 A·g–1.

DOI:

ACS Applied Energy Materials ,
2022, 5 (7), 8132-8142.

Layered Nano-Mosaic of Niobium Disulfide Heterostructures by Direct Sulfidation of Niobium Carbide MXenes for Hydrogen Evolution

Husmann, Samantha | Torkamanzadeh, Mohammad | Liang, Kun | Majed, Ahmad | Dun, Chaochao | Urban, Jeffrey J. | Naguib, Michael | Presser, Volker

DOI:

MXene-transition metal dichalcogenide (TMD) heterostructures are synthesized through a one-step heat treatment of Nb2C and Nb4C3. These MXenes are used without delamination or any pre-treatment. Heat treatments accomplish the sacrificial transformation of these MXenes into TMD (NbS2) at 700 and 900 °C under H2S. This work investigates, for the first time, the role of starting MXene phase in the derivative morphology. It is shown that while treatment of Nb2C at 700 °C leads to the formation of pillar-like structures on the parent MXene, Nb4C3 produces nano-mosaic layered NbS2. At 900 °C, both MXene phases, of the same transition metal, fully convert into nano-mosaic layered NbS2 preserving the parent MXene's layered morphology. When tested as electrodes for hydrogen evolution reaction, Nb4C3-derived hybrids show better performance than Nb2C derivatives. The Nb4C3-derived heterostructure exhibits a low overpotential of 198 mV at 10 mA cm−2 and a Tafel slope of 122 mV dec−1, with good cycling stability in an acidic electrolyte.

DOI:

Advanced Materials Interfaces ,
2022, 9 (14), 2102185.

OPEN ACCESS
Continuous transition from double-layer to Faradaic charge storage in confined electrolytes

Fleischmann, Simon | Zhang, Yuan | Wang, Xuepeng | Cummings, Peter T. | Wu, Jianzhong | Simon, Patrice | Gogotsi, Yury | Presser, Volker | Augustyn, Veronica

DOI:

The capacitance of the electrochemical interface has traditionally been separated into two distinct types: non-Faradaic electric double-layer capacitance, which involves charge induction, and Faradaic pseudocapacitance, which involves charge transfer. However, the electrochemical interface in most energy technologies is not planar but involves porous and layered materials that offer varying degrees of electrolyte confinement. We suggest that understanding electrosorption under confinement in porous and layered materials requires a more nuanced view of the capacitive mechanism than that at a planar interface. In particular, we consider the crucial role of the electrolyte confinement in these systems to reconcile different viewpoints on electrochemical capacitance. We propose that there is a continuum between double-layer capacitance and Faradaic intercalation that is dependent on the specific confinement microenvironment. We also discuss open questions regarding electrochemical capacitance in porous and layered materials and how these lead to opportunities for future energy technologies.

DOI:

Nature Energy ,
2022, 7 pages 222–228.

High-Entropy Sulfides as Electrode Materials for Li-Ion Batteries

Lin, Ling | Wang, Kai | Sarkar, Abhishek | Njel, Christian | Karkera, Guruprakash | Wang, Qingsong | Azmi, Raheleh | Fichtner, Maximilian | Hahn, Horst | Schweidler, Simon | Breitung, Ben

DOI:

Abstract High-entropy sulfides (HESs) containing 5 equiatomic transition metals (M), with different M:S ratios, are prepared by a facile one-step mechanochemical approach. Two new types of single-phase HESs with pyrite (Pa-3) and orthorhombic (Pnma) structures are obtained and demonstrate a homogeneously mixed solid solution. The straightforward synthesis method can easily tune the desired metal to sulfur ratio for HESs with different stoichiometries, by utilizing the respective metal sulfides, even pure metals, and sulfur as precursor chemicals. The structural details and solid solution nature of HESs are studied by X-ray diffraction, transmission electron microscopy, energy-dispersive X-ray spectroscopy, electron energy loss spectroscopy, X-ray photoelectron spectroscopy, inductively coupled plasma optical emission spectroscopy, and Mössbauer spectroscopy. Since transition metal sulfides are a very versatile material class, here the application of HESs is presented as electrode materials for reversible electrochemical energy storage, in which the HESs show high specific capacities and excellent rate capabilities in secondary Li-ion batteries.

DOI:

Advanced Energy Materials ,
2022, 12 (8), 2103090.

OPEN ACCESS
Graphene Acid for Lithium-Ion Batteries—Carboxylation Boosts Storage Capacity in Graphene

Obraztsov, Ievgen | Bakandritsos, Aristides | Šedajová, Veronika | Langer, Rostislav | Jakubec, Petr | Zoppellaro, Giorgio | Pykal, Martin | Presser, Volker | Otyepka, Michal | Zbořil, Radek

DOI:

Abstract Environmentally sustainable, low-cost, flexible, and lightweight energy storage technologies require advancement in materials design in order to obtain more efficient organic metal-ion batteries. Synthetically tailored organic molecules, which react reversibly with lithium, may address the need for cost-effective and eco-friendly anodes used for organic/lithium battery technologies. Among them, carboxylic group-bearing molecules act as high-energy content anodes. Although organic molecules offer rich chemistry, allowing a high content of carboxyl groups to be installed on aromatic rings, they suffer from low conductivity and leakage to the electrolytes, which restricts their actual capacity, the charging/discharging rate, and eventually their application potential. Here, a densely carboxylated but conducting graphene derivative (graphene acid (GA)) is designed to circumvent these critical limitations, enabling effective operation without compromising the mechanical or chemical stability of the electrode. Experiments including operando Raman measurements and theoretical calculations reveal the excellent charge transport, redox activity, and lithium intercalation properties of the GA anode at the single-layer level, outperforming all reported organic anodes, including commercial monolayer graphene and graphene nanoplatelets. The practical capacity and rate capability of 800 mAh g−1 at 0.05 A g−1 and 174 mAh g−1 at 2.0 A g−1 demonstrate the true potential of GA anodes in advanced lithium-ion batteries.

DOI:

Advanced Energy Materials ,
2022, 12 (5), 2103010.

OPEN ACCESS
Emerging, hydrogen-driven electrochemical water purification

Suss, Matthew E. | Zhang, Yuan | Atlas, I. | Gendel, Youri | Ruck, E. B. | Presser, Volker

DOI:

Energy-efficient technologies for the remediation of water and generation of drinking water is a key towards sustainable technologies. Electrochemical desalination technologies are promising alternatives towards established methods, such as reverse osmosis or nanofiltration. In the last few years, hydrogen-driven electrochemical water purification has emerged. This review article explores the concept of desalination fuel cells and capacitive-Faradaic fuel cells for ion separation.

DOI:

Electrochemistry Communications ,
2022, 136 107211.

OPEN ACCESS
P2-type layered high-entropy oxides as sodium-ion cathode materials

Wang, Junbo | Dreyer, Sören L. | Wang, Kai | Ding, Ziming | Diemant, Thomas | Karkera, Guruprakash | Ma, Yanjiao | Sarkar, Abhishek | Zhou, Bei | Gorbunov, Mikhail V. | Omar, Ahmad | Mikhailova, Daria | Presser, Volker | Fichtner, Maximilian | Hahn, Horst | Brezesinski, Torsten | Breitung, Ben | Wang, Qingsong

DOI:

P2-type layered oxides with the general Na-deficient composition Na x TMO2 (x < 1, TM: transition metal) are a promising class of cathode materials for sodium-ion batteries. The open Na+ transport pathways present in the structure lead to low diffusion barriers and enable high charge/discharge rates. However, a phase transition from P2 to O2 structure occurring above 4.2 V and metal dissolution at low potentials upon discharge results in rapid capacity degradation. In this work, we demonstrate the positive effect of configurational entropy on the stability of the crystal structure during battery operation. Three different compositions of layered P2-type oxides were synthesized by solid-state chemistry, Na0.67(Mn0.55Ni0.21Co0.24)O2, Na0.67(Mn0.45Ni0.18Co0.24Ti0.1Mg0.03)O2 and Na0.67(Mn0.45Ni0.18Co0.18Ti0.1Mg0.03Al0.04Fe0.02)O2 with low, medium and high configurational entropy, respectively. The high-entropy cathode material shows lower structural transformation and Mn dissolution upon cycling in a wide voltage range from 1.5 to 4.6 V. Advanced operando techniques and post-mortem analysis were used to probe the underlying reaction mechanism thoroughly. Overall, the high-entropy strategy is a promising route for improving the electrochemical performance of P2 layered oxide cathodes for advanced sodium-ion battery applications.

DOI:

Materials Futures ,
2022, 1 (3), 035104.

OPEN ACCESS