Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 60 checked references that resolve
resolves10.1039/b922014cTechnology development for the production of biobased products from biorefinery carbohydrates—the US Department of Energy’s “Top 10” revisited
resolves10.1039/C9GC02415HUpgrading of levulinic acid into diverse N-containing functional chemicals
resolves10.1039/C8GC02001AValorization of levulinic acid over non-noble metal catalysts: challenges and opportunities
resolves10.1039/c1cs15131bTransformations of biomass-derived platform molecules: from high added-value chemicals to fuels via aqueous-phase processing
resolves10.1002/anie.200902281Catalytic Conversion of Biomass‐Derived Carbohydrates into γ‐Valerolactone without Using an External H<sub>2</sub> Supply
resolves10.1021/acs.langmuir.1c00461Electrodeposited Ni-Rich Ni–Pt Mesoporous Nanowires for Selective and Efficient Formic Acid-Assisted Hydrogenation of Levulinic Acid to γ-Valerolactone
resolves10.1002/cssc.202000175Heterogeneous Catalytic Hydrogenation of Levulinic Acid to γ‐Valerolactone with Formic Acid as Internal Hydrogen Source
resolves10.1016/j.apcata.2014.12.007Nickel-promoted copper–silica nanocomposite catalysts for hydrogenation of levulinic acid to lactones using formic acid as a hydrogen feeder
resolves10.1016/j.rser.2019.05.039Synthesis of γ-valerolactone from different biomass-derived feedstocks: Recent advances on reaction mechanisms and catalytic systems
resolves10.1002/chem.201803319Electrocatalytic Upgrading of Biomass‐Derived Intermediate Compounds to Value‐Added Products
resolves10.1002/cssc.201200765Electricity Storage in Biofuels: Selective Electrocatalytic Reduction of Levulinic Acid to Valeric Acid or γ‐Valerolactone
resolves10.1002/celc.201900734Identification of More Benign Cathode Materials for the Electrochemical Reduction of Levulinic Acid to Valeric Acid
resolves10.3390/catal10060692Synthesis of Valeric Acid by Selective Electrocatalytic Hydrogenation of Biomass-Derived Levulinic Acid
resolves10.1039/C4RA16303FElectrochemistry for the generation of renewable chemicals: electrochemical conversion of levulinic acid
resolves10.1039/C3GC42254BIntegrated electrocatalytic processing of levulinic acid and formic acid to produce biofuel intermediate valeric acid
resolves10.1039/C1EE02685BElectrochemistry for biofuel generation: Electrochemical conversion of levulinic acid to octane
resolves10.1039/C8SC03161DSurface engineering in PbS
<i>via</i>
partial oxidation: towards an advanced electrocatalyst for reduction of levulinic acid to γ-valerolactone
resolves10.1039/D1GC02826JTuning the selectivity of electrochemical levulinic acid reduction to 4-hydroxyvaleric acid: a monomer for biocompatible and biodegradable plastics
resolves10.1002/cssc.201000163Conversion of Levulinic Acid and Formic Acid into γ‐Valerolactone over Heterogeneous Catalysts
resolves10.1002/cssc.201200111Development of Heterogeneous Catalysts for the Conversion of Levulinic Acid to γ‐Valerolactone
resolves10.1002/adma.201705148Laser Irradiation of Metal Oxide Films and Nanostructures: Applications and Advances
resolves10.1039/C6NR00708BHighly crystalline Ni/NiO hybrid electrodes processed by inkjet printing and laser-induced reductive sintering under ambient conditions
resolves10.1002/adfm.201903444Co<sub>3</sub>O<sub>4</sub> Nanoparticles with Ultrasmall Size and Abundant Oxygen Vacancies for Boosting Oxygen Involved Reactions
resolves10.1039/C8CC08951ELaser synthesis of oxygen vacancy-modified CoOOH for highly efficient oxygen evolution
resolves10.1039/C5TA08988CLaser synthesis of clean mesocrystal of cupric oxide for efficient gas sensing
resolves10.1016/j.ijhydene.2021.01.063Homogeneously dispersed cobalt/iron electrocatalysts with oxygen vacancies and favorable hydrophilicity for efficient oxygen evolution reaction
resolves10.1021/acsaem.9b01952Insight into the Boosted Electrocatalytic Oxygen Evolution Performance of Highly Hydrophilic Nickel–Iron Hydroxide
resolves10.1016/j.nanoen.2016.04.006Ni3Se2 nanoforest/Ni foam as a hydrophilic, metallic, and self-supported bifunctional electrocatalyst for both H2 and O2 generations
resolves10.1002/slct.201902724Complementary Bifunctional Unique Properties of (α,β)‐PbO Nanoparticles for Efficient Catalysis and Adsorption for Water Remediation
resolves10.1039/C9NR01112ABeta-lead oxide quantum dot (β-PbO QD)/polystyrene (PS) composite films and their applications in ultrafast photonics
resolves10.1016/j.apcatb.2017.06.053Investigation of the role of surface lattice oxygen and bulk lattice oxygen migration of cerium-based oxygen carriers: XPS and designed H2-TPR characterization
resolves10.1016/j.jallcom.2020.154845One-pot and high-yield preparation of ultrathin β-PbO nanowires and nanosheets for high-capacity positive electrodes in lead-acid batteries
resolves10.1039/F29757100329Electronic structure of the oxides of lead. Part 2.—An XPS study of bulk rhombic PbO, tetragonal PbO, β-PbO
<sub>2</sub>
and Pb
<sub>3</sub>
O
<sub>4</sub>
resolves10.1016/j.apcatb.2020.118954Selective electrocatalytic reduction of carbon dioxide to oxalate by lead tin oxides with low overpotential
resolves10.1021/ja407115pBenchmarking Heterogeneous Electrocatalysts for the Oxygen Evolution Reaction
resolves10.1021/acsami.8b11688CeO<sub><i>x</i></sub>-Decorated NiFe-Layered Double Hydroxide for Efficient Alkaline Hydrogen Evolution by Oxygen Vacancy Engineering
resolves10.1039/C7TA07705JHighly active two dimensional α-MoO
<sub>3−x</sub>
for the electrocatalytic hydrogen evolution reaction
resolves10.1039/D0SC00136HElectrochemical biomass valorization on gold-metal oxide nanoscale heterojunctions enables investigation of both catalyst and reaction dynamics with
<i>operando</i>
surface-enhanced Raman spectroscopy
resolves10.1002/jrs.2951Vibrational properties of levulinic acid and furan derivatives: Raman spectroscopy and theoretical calculations
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