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Energy

Energy

697 Polythiophenes for organic solar cells with efficiency surpassing 17%.
https://www.cell.com/joule/fulltext/S2542-4351(22)00087-3

696 Self-assembled monolayers direct a LiF-rich interphase toward long-life lithium metal batteries.
https://www.science.org/doi/10.1126/science.abn1818

695 Chemo-thermal surface dedoping for high-performance tin perovskite solar cells.
https://www.cell.com/matter/fulltext/S2590-2385(21)00638-X

694 Decoupling mass transport and electron transfer by a double-cathode structure of a Li-O2 battery with high cyclic stability.
https://www.cell.com/joule/fulltext/S2542-4351(22)00024-1

693 Asymmetric donor-acceptor molecule-regulated core-shell-solvation electrolyte for high-voltage aqueous batteries.
https://www.cell.com/joule/fulltext/S2542-4351(22)00002-2

692 Latent heat thermophotovoltaic batteries.
https://www.cell.com/joule/fulltext/S2542-4351(22)00042-3

691 High fill factor organic solar cells with increased dielectric constant and molecular packing density.
https://www.cell.com/joule/fulltext/S2542-4351(22)00038-1

690 Constructing heterojunctions by surface sulfidation for efficient inverted perovskite solar cells.
https://www.science.org/doi/10.1126/science.abl5676

689 Perovskite solar cells including charge transport material fabricated using a reverse-doping process have the highest certified efficiency for cells of 1-cm2 active area and the highest fill factor reported so far.
https://www.nature.com/articles/s41586-021-04216-5

688 Burning plasma achieved in inertial fusion.
https://www.nature.com/articles/s41586-021-04281-w

687 Elastomeric electrolytes for high-energy solid-state lithium batteries.
https://www.nature.com/articles/s41586-021-04209-4

686 28.2%-efficient, outdoor-stable perovskite/silicon tandem solar cell.
https://www.cell.com/joule/fulltext/S2542-4351(21)00499-2

685 Drop-in fuels from sunlight and air.
https://www.nature.com/articles/s41586-021-04174-y

684 Metastable Dion-Jacobson 2D structure enables efficient and stable perovskite solar cells.
https://www.science.org/doi/10.1126/science.abj2637

683 Capturing the swelling of solid-electrolyte interphase in lithium metal batteries.
https://www.science.org/doi/10.1126/science.abi8703

682 Energy supply from magnetoelastic composites.
https://www.nature.com/articles/s41563-021-01104-1

681 Temperature-adaptive radiative coating for all-season household thermal regulation.
https://www.science.org/doi/10.1126/science.abf7136

680 Nanosized and metastable molybdenum oxides as negative electrode materials for durable high-energy aqueous Li-ion batteries.
https://www.pnas.org/content/118/48/e2024969118

679 Low-cost manganese dioxide semi-solid electrode for flow batteries.
https://www.cell.com/joule/fulltext/S2542-4351(21)00348-2

678 Recycled cathode materials enabled superior performance for lithium-ion batteries.
https://www.cell.com/joule/fulltext/S2542-4351(21)00433-5

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