Conspectus
Lithium (Li) metal is the ultimate negative
electrode due to its
high theoretical specific capacity and low negative electrochemical
potential. However, the handling of lithium metal imposes safety concerns
in transportation and production due to its reactive nature. Recently,
anode-free lithium metal batteries (AFLMBs) have drawn much attention
because of several of their advantages, including higher energy density,
lower cost, and fewer safety concerns during cell production compared
to LMBs. Pushing the reversible Coulombic efficiency (CE) of AFLMBs
up to 99.98% is key to achieving their 80% capacity retention over
more than 1000 cycles. However, interfacial irreversible phenomena
such as electrolyte decomposition reactions on both electrodes, dead
Li formation, and Li dendrite formation result in poor capacity retention
and short circuits in LMBs and AFLMBs. Therefore, it is of great importance
and scientific interest to explore those interfacial irreversible
phenomena to improve the cell’s cycle life. Although significant
contributions toward mitigating electrolyte decomposition, dead lithium,
and dendritic lithium formation have been reported at the lithium
anode, real irreversible phenomena are usually hidden or difficult
to discover due to excess lithium employed in LMBs and simultaneous
events taking place in both electrodes or at the interfaces.
An integrated protocol is suggested to include Li||Cu, cathode||Li,
and cathode||Cu configurations to provide overall quantification and
determination of various sources of irreversible Coulombic efficiency
(irr-CE) in AFLMBs and LMBs. Combining Li||Cu, cathode||Li, and cathode||Cu
configurations is essential for separating the root sources of the
capacity loss and irr-CE in LMBs and AFLMBs. Remarkably, integrating
an anode-free cell with various analytical techniques can serve as
a powerful protocol to decouple and quantify those interfacial irreversible
phenomena according to our recent reports.
In this Account,
we focus on the protocol based on an anode-free
cell combined with various analytical methods to investigate interfacial
irreversible phenomena. Complementary advanced tools such as transmission
X-ray microscopy (visualizing Li plating/stripping mechanism), nuclear
magnetic resonance spectroscopy (quantifying dead lithium), and gas
chromatography–mass spectroscopy (decoupling interfacial reactions)
were employed to extract the intrinsic reasons and sources of individual
irreversible reactions in LMBs and AFLMBs. Quantitative evaluation
of nucleation and growth of Li metal deposition are addressed, along
with solid electrolyte interphase (SEI) fracture, visualization of
lithium dendrite growth, decoupling of oxidative and reductive electrolyte
decomposition mechanisms, and irreversible efficiency (i.e., dead
Li and SEI formation) to reveal the intrinsic causes of individual
irr-CE in AFLMBs. Meanwhile, an anode-free protocol can also be utilized
as a powerful and multifunctional tool to develop electrolyte formulations
or artificial layers fo...