
To comprehensively introduce these new research results, the latest research progress on three-dimensional graphene materials is reviewed in this article, including the
For high-performance energy-storage devices, three-dimensional (3D) designs with diverse configurations are demonstrated to provide highly qualified electrodes and efficient
Abstract Three-dimensional electrodes offer great advantages, such as enhanced ion and electron transport, increased material loading per unit substrate area, and improved mechanical stability upon repeated
Consequently, the development of three-dimensional flexible electrodes with a thick electrode structure that increases the areal density of active materials while ensuring full
The reasonable distribution of pore structure in micro-nanomorphology of electrode materials is advantageous for accelerating ion diffusion, enhancing electrochemical reactivity
Nanostructured materials afford a promising potential for many energy storage applications because of their extraordinary electrochemical properties. However, the remarkable electrochemical energy storage
In this Account, we review recent developments in nanocellulose-based energy storage. Due to the limited space, we will mainly focus on structure design and engineering strategies in macrofiber, paper, and three-dimensional
Graphical Abstract MXenes are rising in the two-dimensional materials family with excellent performances in many applications, particularly in electrochemical energy storage. Here, we summarize the most up-to-date research
Beyond the commercial carbon for batteries and supercapacitors, many studies focused on advanced and multifunctional carbon with various structures for electrochemical
Wood has a natural three-dimensional porous skeleton structure, which can be used in the research of energy storage devices. Shan et al. comprehensively discuss the synthetic methods of various electrochemical
A novel three-dimensional graphene for remarkable performance of electrochemical energy storage Zhigang Zhang, Jinping Zhao, Lianlian Gao, Jin Zhou,
Also, the MnS NP''s distinctive structure and even distribution throughout the self-supporting, flexible, well-designed three-dimensional (3D) CNF network, the MnS/MXene
In this paper, a three-dimensional model of electrochemical-magnetic field-thermal coupling is formulated with lithium-ion pouch cells as the research focus, and the spatial
Electrochemical energy storage and conversion systems such as lithium-ion batteries (LIBs) and supercapacitors (SCs) have become one of the most important research fields in the world.
The rapid evolution of energy storage devices, driven by increasing demands for prolonged battery life in electronics as well as sustainable energy solutions has elevated
Graphene-based materials have been extensively investigated in the energy-related applications owing to their unique properties, such as high conductivity and mechanical
Compared to traditional manufacturing techniques, 3D printing allows for more the precise control of electrochemical energy storage behaviors in delicately printed structures and reasonably
Moreover, when applied for energy storage and conversion, such two-dimensional MOFs nanosheet and their derived two-dimensional materials would suffer the possible
Since graphene was first experimentally isolated in 2004, many other two-dimensional (2D) materials (including nanosheet-like structures), such as transition metal
An overview of three-dimensional ordered porous electrode materials for use in various electrochemical energy storage devices
Benefiting from those properties and the unique structure, three-dimensional graphene-based materials are attractive for a broad range of applications, especially in energy
Compared to traditional manufacturing techniques, 3D printing allows for more the precise control of electrochemical energy storage behaviors in delicately printed structures and
Abstract Recently, the fabrication of electrochemical energy storage (EES) devices via three-dimensional (3D) printing has drawn considerable interest due to the enhanced electrochemical performances that arise from
Recent progress has demonstrated that three-dimensional (3D) carbon nanomaterials are extremely promising candidates for the electrodes of electrochemical energy storage devices due to their unique structural
High-precision three-dimensional (3D) printing has enabled the fabrication of architected microlattices with complex geometries and tunable functionalities, offering new
This review summarizes the zero- to three-dimensional carbon-based materials and reviews their various electrochemical applications based on their structural characteristics. The importance of carbon structures and the
Three-dimensional graphene (3DG)/metal–organic framework (MOF)-based composites have attracted more and more attention in the field of energy due to their unique hierarchical porous
Compared to zero-dimensional carbon particles, one-dimensional carbon fibers, and two-dimensional carbon sheets, three-dimensional (3D) carbon architectures possess the most flexible and tailorable structures and
Ideal three-dimensional electrode structures for electrochemical energy storage. Three-dimensional electrodes offer great advantages, such as enhanced ion and electron transport,...
Compared to zero-dimensional carbon particles, one-dimensional carbon fibers, and two-dimensional carbon sheets, three-dimensional (3D) carbon architectures possess the
Three-dimensional (3D) carbon-based materials are emerging as promising electrode candidates for energy storage devices. In comparison to the 1D and 2D structures,
Benefiting from numerous merits such as high electrical conductivity, structural diversity, and excellent chemical stability, three-dimensional (3D) carbon-based materials have been widely
Porous carbons are widely used in the field of electrochemical energy storage due to their light weight, large specific surface area, high electronic conductivity and structural
The advancement of next-generation energy technologies calls for rationally designed and fabricated electrode materials that have desirable structures and satisfactory
Here, we review recent advances in 3D polymer based solid-state electrochemical energy storage devices (mainly in SSCs and ASSLIBs), including the 3D electrode (cathode,
Graphene-based three-dimensional (3D) macroscopic materials have recently attracted increasing interest by virtue of their exciting potential in electrochemical energy conversion and storage.
ABSTRACT Electrochemical capacitors have achieved prodigious attention among energy storage devices due to their simple and efficient storage mechanism, moderate specific
Three-dimensional porous carbon decorated with FeS2 nanospheres nanocomposites (FeS2/3DPC) are developed as electrode material for supercapacitors and
To attain high capacitance, pseudo-capacitors make use of improved energy storage, rate capability, and quick reversible redox processes on the surface or subsurface of
As a typical hierarchical carbon material, three-dimensional ordered porous carbon (3D-OPC) has unique characteristics of low cost, large specific surface area, highly ordered channels, and high electronic and ionic
Key words three-dimensional structure / electrode / energy storage / lithium-ion battery / supercapacitor
Three-dimensional (3D) printing, as an advanced additive manufacturing technique, is emerging as a promising material-processing approach in the electrical energy storage and conversion field, e.g.,
The tendency of Ti 3 C 2 T x nanosheets to be stacked makes it challenging to immobilize the active material, thus limiting the performance of the storage device. Integrating
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