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Overcoming Obstacles in the Aqueous Processing of Nickel-rich Layered Oxide Cathode Materials
(2022)
The implementation of a water-based cathode manufacturing process is attractive, given the prospect of improved sustainability of future lithium-ion batteries. However, the sensitivity of many cathode materials to water poses a huge challenge.
Within the scope of this work, a correlation between the water sensitivity of cathode materials from the class of layered oxides and their elemental composition was identified. In particular for the cathode material LiNi0.8Co0.15Al0.05O2 (NCA), the processes taking place in aqueous medium were clarified in detail. Based on this knowledge, the surface of NCA particles could be specifically modified, which led to a reduced water sensitivity. As a result, the electrochemical performance of cells with water-based NCA cathodes was significantly improved and a remarkable long-term cycling performance was achieved.
The present work contributes to a deeper understanding of the water sensitivity of cathode materials and at the same time presents a promising approach to overcome this obstacle. Consequently, this work advances the successful widespread realization of water-based cathode manufacturing.
In the first part of his work, the causes for the sudden degradation of useable capacity of lithium-ion cells have been studied by means of complementary methods such as computed tomography, Post-Mortem studies and electrochemical analyses. The results obtained point unanimously to heterogeneous aging as a key-factor for the sudden degradation of cell capacity, which in turn is triggered by differences in local compression.
At high states of health, the capacity fade rate is moderate but some areas of the graphite electrode degrade faster than others. Still, the localized changes are hardly noticeable on cell level due to averaging effects. Lithium plating occurs first in unevenly compressed areas, creating patterns visible to the human eye. As lithium plating leads to rapid consumption of active lithium, a sudden drop in capacity is observed on cell level. Lithium plating appears to spread out from the initial areas over the whole graphite electrode, quickly consuming the remaining useful lithium and active graphite. It can be hypothesized that a self-amplifying circle of reciprocal acceleration of local lithium loss and material loss causes rapid local degradation.
Battery cell designers can improve cycle life by homogeneous pressure distribution in the cell and using negative active materials that are resilient to elevated discharge potentials such as improved carbons or lithium titanate. Also, a sufficiently oversized negative electrode and suitable electrolyte additives can help to avoid lithium plating. When packs are designed, care must be taken not to exert local pressure on parts of cells and to avoid both very high and low states of charge.
In the second part of this dissertation the resilience of cylindrical and pouchbag cells to shocks and different vibrations was investigated. Stresses inflicted by vibration and shock tests according to the widely recognized UN38.3 transport test were compared to a long-time test that exposed cells to a 186 days long ordeal of sine sweep vibrations with a profile based on real-world applications. All cells passed visual and electric inspection performed by TU München after the vibration tests. Only cylindrical cells subjected to long-term vibrations in axial direction showed an increase in impedance and a loss of capacity that could be recuperated in part.
The detailed analyses presented in this thesis gave more details on the damages inflicted by vibrations and shocks and revealed drastic damages in some cases. In cylindrical cells, only movement in axial direction caused damage. Long term vibrations were found to be especially detrimental.
No damage whatsoever could be detected for pouch cells, regardless of the test protocol and the direction of movement. The extreme resilience of pouchbag cells shows that the electrode stack of lithium-ion cells is resistant to vibrations, and that damages are caused by design imperfections that can be improved at low cost.
The findings of this work, and the general state of research show that it is most crucial to control the lithiation and thus potential of the graphite electrode.
In the last part of this work, a new, direct method for charge estimation based on changing transmission is presented. A correlation between transmission of short ultrasonic pulses and state of charge is found. This new technology allows direct measurement of the state of charge. The method is demonstrated for batteries with different positive active materials, showing its versatility. As the observed changes can be traced to the lithiation of graphite, it can be determined without a reference electrode. Already at this early stage of development, the found correlations allow estimation of state of charge. The present hysteresis in the signal height of the slow wave, which is unneglectable especially during discharging at higher currents, will be subject to further investigation.
The observed effects can be explained by effects on different length scales. Biot’s theory explains the second wave’s slowness based on the active material particles size in the range of 0.01 mm and electrolyte-filled pores. Lithiation of graphite changes the porosity of the electrode and thereby the velocity and wavelength of the impulse. When the wavelength approaches the length scale of the layers, 0.1 mm, scattering effects dampen the transmitted signal. Finally, the wavelength of the pulse should be shorter than the transducers diameter to obtain a homogeneous wave front.
To conclude, the new method allows the control of each individual cell in a pack independent from the electrical connections of the cells.
As the method shows great promise, further studies regarding factors such as long-term behavior, temperature and current rates should be conducted. In this thesis hysteresis was observed and a deeper understanding of the reasons behind it may allow further improvements of measurement precision.
While the field of electrochromic (EC) materials and devices (ECDs) continues to advance in terms of color palette and understanding the underlying mechanism, several scientific and technological challenges need to be addressed by optimizing the materials and understanding the electrochemical interplay of these materials in full cells. The main issue here is to further improve the EC profile for color neutrality and cycling stability in order to commercialize dimmable EC products. The transparent conductive substrates used in this work (FTO and ultra-thin ITO glass) have high visible light transmittance (τv > 85%) and low sheet resistance (< 25 Ω·sq-1). In addition, the Li+-containing gel electrolyte has sufficient ionic conductivity (2.8·10-4 S·cm-1 at 25 °C), so the investigated ECDs could achieve a fast response (required ionic conductivity is between 10−3 and 10−7 S·cm-1).
This work shows that the combination of cathodically-coloring Fe-MEPE with anodically-coloring non-stoichiometric nickel oxide (Ni1-xO) electrodes (prepared by the National Institute of Chemistry in Ljubljana, Slovenia) can be used in neutral-coloring type III ECDs. The Fe-MEPE/Ni1-xO ECD with the underbalanced CE (ECD1-1, 2: 1) and the balanced configuration (ECD1-2, 1: 1) are both nearly neutrally-colored (ECD1-1: a* = -6.7, b* = 8.8; ECD1-2: a* = -9.0, b* = 10.1) in the bright state with a τv of almost 70%. Due to the overbalancing of the CE (ECD1-3, 1:3), a deviation (a* = -2.8, b* = 19.9) from the neutral coloration occurred here. The balanced as well as the overbalanced ECD configurations show high electrochemical cycling stability (over 1,000 potentiostatic switching cycles). In general, the overbalanced configuration offers the advantage of a smaller operating voltage range (-1 V ↔ 2.5 V to -1 V ↔ 1.5 V), i.e., avoiding possible electrochemical degradation of the EC materials, electrolyte, or conductive layers. By using a Li RE in the full cell, insights into the optimal matching of electrochemical and optical properties between the two electrodes are obtained to achieve more stable ECDs. Thereby, the redox potentials of both EC electrodes (Fe-MEPE and Ni1-xO) can be measured during operation. The incomplete decolorization of ECD1-1 can be explained by the measured electrode potentials (below the required 4 V vs. Li/Li+), excluding side reactions and degradation at both electrodes. The results demonstrate the importance of using balanced and (slightly) overbalanced ECD configurations with complementary-coloring EC electrodes to achieve high cycling stability and fast switching at low operating voltages. Therefore, this three-electrode configuration provides an excellent method for in situ electrochemical characterization of the individual EC electrodes to better understand the redox processes during device operation and to further improve the optical contrast and cycle stability of ECDs.
The Fe-MEPE/Ni1-xO combination was tested on flexible ultrathin ITO glass (ECD1-4). Here, by applying a low voltage of -1 V ↔ 2.5 V, the MEPE/Ni1-xO ECDs can be reversibly switched from a colored (L* = 35.6, a* = 19.4, b* = -26.7) to a nearly colorless (L* = 78.5, a* = -14.0, b* = 21.3) state. This is accompanied by a change in τv from 6% to 53%. The ECDs exhibit fast response and good cycling stability (5% loss of optical contrast over 100 switching cycles).
To further improve color neutrality and cycling stability, ECDs combining Fe-MEPE and mixed metal oxides as ion storage layers were investigated. Titanium manganese oxide (TMO, Fraunhofer IST) and titanium vanadium oxide (TiVOx, EControl-Glas GmbH & Co. KG) electrodes are compared for use as optically-passive ion storage layers. TiVOx with a maximum charge density of approx. 27 mC·cm-2 and a coloration efficiency of η = 2 cm·C-1 at 584 nm shows a color change from yellow to light gray at 2 V vs. Ag/AgCl, while the slightly anodically-coloring Ti-rich TMO (10.5 mC·cm-², η584 nm = -4 cm·C-1) switches from light yellow to colorless at -2.5 V vs. Ag/AgCl. These materials show only a slight change in τv value from 85% to 75% and from 72% to 81%, respectively, thus reaching the requirements for highly transmissive optical-passive ion storage layers. The ECDs with Fe-MEPE in combination with TiVOx (ECD2-1) and TMO-1 (ECD2-2) are blue-purple in the dark state (0 V) and turn colorless by applying a voltage of 1.5 V, changing the τv value from 28% to 69% and from 21% to 57% in 3 s and 13 s, respectively. The ECDs show fast responses and high cyclability over more than 100 cycles.
In the last section, the simplification of cell architecture by using redox mediators shows that different redox mediators (KHCF(III), Fc-PF6, Fc-BF4, and TMTU) can be used in type II ECDs (4 instead of 5 layers) consisting of Fe-MEPE or Ni1-xO thin film electrodes. The combination of KHCF(III) with Fe-MEPE has a low cycling stability due to the electrochemical formation of Prussian blue (PB). This side reaction is undesirable as it decreases the optical contrast. It can be avoided by using Fc+- (ECD3-5/6) or TMTU-based (ECD3-7) redox mediators, which exhibit reversible redox behavior. A high τv value of 72% is obtained for the use of TMTU. Low concentrations (<0.1 M) of redox mediators decrease the cell voltage for complete switching without affecting the optical properties of the ECDs. The redox couple TMTU/TMFDS2+ (molar ratio of 1:0.1 in 1 M LiClO4/PC as electrolyte) works well in combination with
Ni1-xO electrodes (ECD3-10), with a change in τv value from 38% (colored at 2 V, L* = 67.1, a* = 3.9, b* = 17.2) to 70% at (decolored at -2 V, L* = 86.6, a* = -0.6, b* = 17.2). This result implies that incorporating redox mediators into the electrolyte is an effective means to simplify the cell assembly and color neutrality can be obtained with one optically active WE and a color-neutral redox mediator. Moreover, the combination of Ni1-xO and the colorless TMTU/TMFDS2+ redox mediator is a potential candidate to obtain neutrally colored ECDs.
It is shown that the lab-sized FTO- and ultra-thin ITO-glass-based ECDs are very attractive for energy-efficient EC applications, e.g., in architectural or automotive glazing, aircraft, ships, home appliances and displays. To monitor the EC performance and to prevent diverging electrode potentials during the switching process, the studied three-electrode configuration can help to extend the cycle stability as well as to improve the charge balancing of dimmable applications. The studied ECDs display a route towards neutral tint, e.g., EC active Ni1-xO, optically-inactive mixed metal oxides, and colorless redox mediators. Nevertheless, color neutrality should be further improved to meet the requirements for industrial applications. For future work, a scale-up process from lab-sized (few cm²) to prototype (few m²) ECDs will be necessary.