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15 results for “upcycling”

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zenodo44/100

Upcycling Human Excrement: The Gut Microbiome to Soil Microbiome Axis (supporting data)

<div> <div>This archive contains the supporting data and code for <a href="https://doi.org/10.1093/ismeco/ycaf089" target="_blank" rel="noopener">Meilander et al., 2024:&nbsp;<em>Upcycling Human Excrement: The Gut Microbiome to Soil Microbiome Axis</em></a>.</div> <div>&nbsp;</div> <div><strong>Clicking the links below will open the corresponding files using QIIME 2 View (<a href="https://view.qiime2.org" target="_blank" rel="noopener">https://view.qiime2.org</a>).&nbsp;</strong></div> <div>&nbsp;</div> <div> <div> <div>Summaries of master data files:</div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/asv-table.qzv/content" target="_blank" rel="noopener">Summary of master feature table (<code>asv-table.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/sample-metadata.qzv/content">Tabulated view of sample metadata (<code>sample-metadata.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/records/15390940/files/asv-seqs-ms10.qzv?download=1" target="_blank" rel="noopener">Summary of ASV sequences observed in at least 10 samples: (<code>asv-seqs-ms10.qzv</code>)</a></div> <div>&nbsp;</div> <div>PCoA plots:</div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/braycurtis.qzv/content" target="_blank" rel="noopener">Bray-Curtis Emperor plot (<code>braycurtis.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/jaccard.qzv/content" target="_blank" rel="noopener">Jaccard Emperor plot (<code>jaccard.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/unweighted_unifrac.qzv/content" target="_blank" rel="noopener">Unweighted UniFrac Emperor plot (<code>unweighted_unifrac.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/weighted_unifrac.qzv/content" target="_blank" rel="noopener">Weighted UniFrac Emperor plot (<code>weighted_unifrac.qzv</code>)</a></div> <div>&nbsp;</div> <div>Taxonomy barplots:</div> <div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/records/15390940/files/taxa-bar-plots-bucket2-gtdb-r214.1-weighted-stool-taxonomy.qzv?download=1">Taxonomy bar plot for Bucket 2 only (<code>taxa-bar-plots-bucket2-gtdb-r214.1-weighted-stool-taxonomy.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/records/15390940/files/taxa-bar-plots-bucket3-gtdb-r214.1-weighted-stool-taxonomy.qzv?download=1" target="_blank" rel="noopener">Taxonomy bar plot for Bucket 3 only (<code>taxa-bar-plots-bucket3-gtdb-r214.1-weighted-stool-taxonomy.qzv</code>)</a></div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/taxa-bar-plots-gtdb-r214.1-weighted-stool-taxonomy.qzv/content" target="_blank" rel="noopener">Taxonomy bar plot for all samples (<code>taxa-bar-plots-gtdb-r214.1-weighted-stool-taxonomy.qzv</code></a>)</div> </div> <div>&nbsp;</div> <div>q2-fmt "raincloud plots":</div> <div><a href="https://view.qiime2.org/visualization/?src=https://zenodo.org/api/records/13887457/files/hec-raincloud.qzv/content">Raincloud plot (<code>hec-raincloud.qzv</code>)</a></div> <div>&nbsp;</div> </div> </div> <div>&nbsp;</div> <div>The linked <code>.qzv</code> files are also contained in the <code>gut-to-soil-qiime2.zip</code> zip file, along with all relevant data artifacts (<code>.qza</code> files).</div> <div>The <code>.qzv</code> files are also maintained outside of the <code>.zip</code> file to facilitate their viewing with QIIME 2 View.</div> </div> <div>&nbsp;</div> <div> <div>Code for generating figures 1 and 2 (and corresponding supplemental figures):</div> <div><code>gut-to-soil-manuscript-figures-main.zip</code> (also see: <a href="https://github.com/caporaso-lab/gut-to-soil-manuscript-figures" target="_blank" rel="noopener">https://github.com/caporaso-lab/gut-to-soil-manuscript-figures</a>)</div> <div>&nbsp;</div> <div>Code for generating ridgeline plots (Figure S6):</div> <div><code>gut-to-soil-ridgeline-plots-main.zip</code> (also see: <a href="https://github.com/caporaso-lab/gut-to-soil-ridgeline-plots" target="_blank" rel="noopener">https://github.com/caporaso-lab/gut-to-soil-ridgeline-plots</a>)</div> </div> <div> <div>&nbsp;</div> </div>

opencc-by-4.0Oct 2024View details →
zenodo40/100

Data for: Upcycling Chips‐Bags for Passive Daytime Cooling

<p>The data include all raw data regarding the employed characterization techniques as discussed in the affected publication. These comprise: optical spectroscopy, indoor and field test measurements for passive cooling characterization, RAMAN spectroscopy and scanning electron microscopy</p>

opencc-by-4.0Mar 2024View details →
zenodo40/100

Upcycling food ingredients from orange by-products by hot air-microwave drying. Impact on energy consumption.

<p>Currently industrial citrus by-products represent a relevant environmental issue. The main aim of this work was the chemical characterization of the different bioactive compounds obtained after hot air-microwave drying (HAD+MW) of orange by-products, and their further conversion into three <strong>upcycled </strong>ingredients with health-related benefits: aqueous extract, ethanolic extract and <strong>dietary fibre</strong>. Total phenolics, antioxidant capacity, individual phenolic acids, flavonoids, limonin and carotenoids were monitored during blanching and colour extraction steps by analysing fresh by-products and process co-products: an aqueous extract rich in polyphenols and an ethanolic extract rich in carotenoids. After drying, the resulting fibre was characterized in terms of chemical composition, soluble and insoluble dietary fibre content and particle size.&nbsp; Technological properties and colour were compared to those of commercial citrus fibre. Energy and time consumption were compared with conventional hot air drying (HAD). Most polyphenols (50-65 %) and limonin (70 %) were extracted during the blanching step. 86 % of carotenoids were removed by soaking in ethanol. The orange fibre obtained had 71.9 g DF/ 100 g and antioxidant properties (205 mg TE/ Kg<sub>dm</sub>). Whiteness, water retention capacity and oil retention capacity were similar to commercial citrus fibre. HAD+MW reduced drying time and energy consumption by up to 50&nbsp;% compared to HAD.</p>

opencc-by-4.0Nov 2021View details →
zenodo40/100

Upcycling a Plastic Cup: One-Pot Synthesis of Lactate Containing Metal Organic Frameworks from Polylactic Acid

<p>Data supporting publication:&nbsp;<strong>Upcycling a plastic cup: one-pot synthesis of lactate containing metal organic frameworks from polylactic acid</strong>,&nbsp;Benjamin Slater, So-On Wong, Andrew Duckworth,&nbsp;Andrew J. P. White, Matthew R. Hill and Bradley P. Ladewig, Chen. Commun. (2019), DOI: <a href="https://doi.org/10.1039/c9cc02861g">10.1039/c9cc02861g</a>.&nbsp;</p> <p>Includes raw data for XRD spectra for all materials, CIF file and checkCIF file.</p> <p>v2 includes additional high-resolution photos and diagrams supporting the publication</p>

opencc-by-4.0Apr 2019View details →
zenodo36/100

Upcycling of recycled minerals from sewage sludge through black soldier fly larvae (Hermetia illucens): impact on growth and mineral accumulation

<p>Dataset for the insect experiment&nbsp;to evaluate the growth and bioaccumulation of mineral and heavy metal in black soldier fly larvae reared either on a modified Gainesville fly diet (FD) or on FD supplemented with either 4% of biochar or 3.6% of single-superphosphate recyclate.</p>

opencc-by-4.0Jul 2023View details →
dryad36/100

Chemical upcycling of polyethylene, polypropylene, and mixtures to high-value surfactants

<p>Conversion of plastic wastes to fatty acids is an attractive means to supplement the sourcing of these high-value, high-volume chemicals. Herein, we report a method for transforming polyethylene (PE) and polypropylene (PP) at ~80% conversion to fatty acids with number average molar masses up to ~700 Da and 670 Da, respectively. The process is applicable to municipal PE and PP wastes and their mixtures. Temperature-gradient thermolysis is the key to controllably degrading PE and PP into waxes and inhibiting producing small molecules. The waxes are upcycled to fatty acids by oxidation over manganese stearate and subsequent saponification. PP ꞵ-scission produces more olefin wax and yields higher acid-number fatty acids than PE. We further convert the fatty acids to high-value, large-market-volume surfactants. Industrial-scale technoeconomic analysis suggests economic viability without subsidies.</p>

opencc-zeroAug 2023View details →
dryad36/100

Data from: Upcycling in the Hawaiian Islands: Native forest birds commonly engage in nest material kleptoparasitism

Open the record for dataset details and reuse information.

publicDec 2025View details →
dryad36/100

Chemical upcycling of polyethylene, polypropylene, and mixtures to high-value surfactants

Open the record for dataset details and reuse information.

publicAug 2023View details →
zenodo32/100

Data for: Passive Daytime Cooling Foils for Everyone: A Scalable Lamination Process Based on Upcycling Aluminum-Coated Chips Bags

<p>Raw data of the measurements presented in the affiliated publication. The data are organized in folders corresponding to the respective characterization techniques. The employed techniques comprise: optical spectroscopy, indoor and field testing of the passive cooling performance, and scanning electron microscopy imaging.</p>

opencc-by-nc-nd-4.0Mar 2024View details →
zenodo32/100

Food upcycling strategies applied by the listed companies involved in food value chain

<p>The DataSet contains a set of data that informs the analyses conducted for the study of food upcycling strategies applied by the listed companies involved in the food value chain.</p> <p><span>This paper aims to discover the main directions of scientific discourse on food upcycling and cross-check it with the perspective of leading food chain companies. Scientific discourse was analyzed using a systematic literature review using defined query and network analysis. Theme time, the perspective of a leading food chain company, was approached through the content analysis of annual reports of listed companies. A replicable analysis approach was developed and demonstrated on two samples of companies listed on two European stock exchanges.</span></p> <p><span>Bibliometric research shows that research on upcycling topics is characterized by a high level of atomization, which may indicate an early sta research stage in this field. Qualitative research on non-financial annual reports published by selected companies has shown that currently, companies do not widely use upcycling in business practice. The authors attribute this state of affairs, among others, to the lack of a uniform reporting standard covering upcycling. Another conclusion from the study is that companies operating in the food value chain closer to the consumer are more likely to initiate activities with the potential for upcycling.</span></p>

opencc-by-4.0May 2024View details →
zenodo32/100

Dataset for "Insect frass from upcycling vegetable by-products with cereals: effects on the soil properties, plant development and soil invertebrate fitness"

Open the record for dataset details and reuse information.

opencc-by-4.0Oct 2024View details →
zenodo32/100

A hybrid chemical-biological approach can upcycle mixed plastic waste with reduced cost and carbon footprint

<p>Derived from renewable feedstocks, such as biomass, polylactic acid (PLA) is considered a more environmentally-friendly plastic than conventional petroleum-based polyethylene terephthalate (PET). However, PLA must still be recycled and its growing popularity and mixture with PET plastics at the disposal stage poses a cross-contamination threat in existing recycling facilities and results in low-value and low-quality recycled products.&nbsp;Hybrid upcycling has been proposed as a promising sustainable solution for mixed plastic waste; but its techno-economic and lifecycle environmental performance remain understudied. Here we propose a hybrid upcycling approach using a biocompatible ionic liquid (IL) to first chemically depolymerize plastics, then convert the depolymerized stream via biological upgrading with no extra separation. We show that over 95% of mixed PET/PLA was depolymerized into their respective monomers, which then served as the sole carbon source for the growth of&nbsp;<i>Pseudomonas putida</i>, enabling the conversion of the depolymerized plastics into biodegradable polyhydroxyalkanoates (PHA). In comparison to conventional commercial PHA, the estimated optimal production cost and carbon footprint are reduced by 62% and 29%, respectively.</p>

opencc-by-4.0Jan 2023View details →
dryad32/100

Polyethylene upcycling to long-chain alkylaromatics by tandem hydrogenolysis/aromatization

Open the record for dataset details and reuse information.

publicAug 2020View details →
zenodo28/100

Supplementary Materials - Upcycling phosphorus recovered from anaerobically digested dairy manure to support production of vegetables and flowers

<p>Table S1; Nutrient contents of materials on a dry weight basis, Table S2; Bioassay germination rates, survival rates, root dry biomass, shoot dry biomass and total dry biomass by amendment and application rate, Figure S1; Pathogen suppression potential of as-is fine solids and the market alternative</p>

opencc-by-4.0Jan 2020View details →
geo24/100

Microbial-upcycling of polyamides using engineered Pseudomonas putida

GEO Series GSE244960. Pseudomonas putida. 10 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenNov 2024View details →

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