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Anhui Liwei Chemical Co., Limited.

Dairen DA-108 VAE Emulsion

    • Product Name: Dairen DA-108 VAE Emulsion
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
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    Specifications
    HS Code 623998
    Appearance White milky liquid
    Solid Content 55.0 ± 1.0 %
    Viscosity 1500 ± 500 mPa·s (Brookfield, 20 rpm, 25°C)
    Ph 5.5 - 7.0
    Glass Transition Temperature -10 °C
    Minimum Film Forming Temperature 0 °C
    Particle Size 0.5 - 2.0 μm
    Density 1.05 g/cm³ (at 20°C)
    Surface Tension 38 ± 2 mN/m
    Film Appearance Transparent, flexible film

    As an accredited Dairen DA-108 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dairen DA-108 VAE Emulsion is packaged in 200 kg net drums or 1,000 kg IBC totes, sealed for safe transport.
    Container Loading (20′ FCL) Dairen DA-108 VAE Emulsion is loaded into a 20-foot container, using drums on pallets, properly secured for safe transport.
    Shipping Dairen DA-108 VAE Emulsion ships in sealed drums, IBC totes, or bulk tankers, depending on volume. Protect from freezing, extreme heat, and direct sunlight. Keep containers upright and dry during transit to prevent leakage or contamination. Ensure adequate ventilation and avoid prolonged storage before use.
    Storage Store Dairen DA-108 VAE Emulsion in its original, tightly sealed container in a cool, dry, well-ventilated area. Avoid direct sunlight, heat sources, and freezing; maintain temperatures above 5°C. Keep away from moisture and contamination. Stir gently before use. Follow manufacturer’s shelf-life guidelines for optimal performance.
    Shelf Life Shelf life is typically six months when stored in original containers, protected from freezing, heat, and direct sunlight.
    Application of Dairen DA-108 VAE Emulsion

    What Happens When VAE Replaces Solvent-Based Laminating Adhesives?

    In flexible packaging converters shifting from solvent‑based polyurethane to waterborne systems, Dairen DA‑108 VAE emulsion functions as the primary adhesive vehicle in dry‑lamination constructions for snack‑food webs. The wet adhesive blend typically withdraws 88–95 wt% of DA‑108 (as‑received emulsion at 55% solids), with the balance composed of a defoamer meeting FDA 21 CFR 175.105 indirect‑food‑additive clearance and a polyether‑siloxane wetting agent at 0.2–0.5%. This high‑emulsion fraction is feasible because the internal ethylene‑rich segments plasticize the copolymer, removing the need for fugitive coalescents that would otherwise raise total volatile organic content above 2,000 ppm in the applied film. The mix is delivered to a direct‑gravure coating head with a 120–160 line/cm laser‑engraved cylinder, laying down 2.0–4.0 g/m² dry coatweight onto 12–20 µm polyester or oriented polypropylene primary web. A three‑zone forced‑air oven set to 75–90°C with an air velocity of 18–25 m/s evaporates water within 2.5–4.0 seconds dwell time before the substrate enters a heated nip at 80–100°C and 3.5–5.0 bar linear pressure, marrying the coated film to a 30–60 µm LDPE sealant layer. Finished laminate is immediately slit into bags for salty snacks or condiment sachets where FDA 21 CFR 177.1395 extraction limits apply to the food‑contact side. Converters report that bath pH must be maintained between 4.5 and 5.8 because excursions beyond 6.2 generate acetate‑ion release that destabilizes the colloidal zeta potential, resulting in gravure‑cell plugging and coatweight variability exceeding ±0.5 g/m². Equipment with chrome‑plated cylinder surfaces exhibits less fouling than ceramic‑coated rolls when run continuously beyond 8 hours. Published peel‑strength values for PET/LDPE laminations, measured according to ASTM F88/F88M‑21 at 300 mm/min jaw separation, fall in the range 2.8–4.0 N/15 mm after 48‑hour conditioning at 23°C/50% RH, which meets the threshold for non‑retort pouches. Pre‑heating the emulsion to 30°C before circulation is recommended when ambient shop‑floor temperature drops below 12°C, because the minimum film‑formation temperature of 0°C cannot compensate for evaporative cooling in the transfer nip.

    In interior wall paint formulations targeting ≤50 g/L volatile organic content, Dairen DA‑108 is introduced as the primary binder at 13–18 wt% of the total wet‑paint mass, with the emulsion contributing 80–100 kg per 1,000‑litre batch. The let‑down sequence on a high‑speed disperser with a tooth‑blade diameter of 0.4× tank diameter adds the emulsion after a predispersed pigment slurry containing rutile TiO₂, calcined kaolin extender and a sodium polyacrylate dispersant has passed a Hegman gauge reading of 6+. Stirring is maintained at 400–600 rpm under a vortex depth of 25–30% of liquid height to avoid air entrapment that would lengthen in‑can de‑aeration beyond 24 hours. Rheology adjustment with a hydroxyethylcellulose thickener (0.3–0.6% on total weight) brings the Stormer viscosity to 90–105 KU and ICI cone‑and‑plate viscosity to 1.5–2.5 P, profiles required for roller loading and spatter resistance conforming to ASTM D4707‑09(2017). Scrub resistance, tested under ASTM D2486‑17 Method B with a 10‑mil gap drawdown on black vinyl scrub panels, exceeds 1,200 cycles at 70% binder pigment volume concentration when the coalescing aid level is kept below 0.8% of emulsion solids, beyond which the dry film softens and exhibits early failure. The final coating, classified as GB/T 9756‑2018 “first‑grade” interior emulsion paint, delivers a contrast ratio ≥0.95 at 150 µm wet film thickness. Tinted bases containing >3% by weight of universal colorant require an extension of the equilibration period to 6 hours before viscosity re‑check, because VAE‑associated carboxylate stabilization interacts with high‑pH pigment dispersions, causing a transient shear‑thinning drift. Over‑loading ammonia as a neutralizer beyond pH 9.0 results in yellowing of the dried film under UV‑B exposure as measured by ASTM G154‑23 cycle 1. The paint is supplied in 1 L, 5 L, and 18 L containers for direct consumer application by roller or brush onto primed gypsum plasterboard.

    Application SegmentRegulatory / Standard ReferenceTestMethod DesignationGeographic Scope
    Laminating adhesive for dry food packagingFDA 21 CFR 175.105; EU 10/2011 (overall migration 10 mg/dm²)ASTM F88/F88M‑21 peel; EN 1186‑1 migrationNorth America, EU
    Interior wall paintGB/T 9756‑2018; French VOC regulation class A+ASTM D2486‑17 scrub; ISO 11998 wet scrubAsia‑Pacific, Europe
    Textile pigment print binderOeko‑Tex Standard 100 class I; GB 18401‑2010 infant wearISO 105‑C06 washing fastness; AATCC 61‑2AGlobal
    Paper cup barrier coatingFDA 21 CFR 176.170; BfR Recommendation XXXVITAPPI T 454 Cobb test; EN 920 hot‑water resistanceNorth America, Europe
    Cold‑press wood assemblyEN 204/205 D2; ASTM D5751‑99(2019)EN 205 shear strength; ASTM D905 block shearEurope, North America
    Carpet tuft‑lock compoundASTM D1335‑17 tuft bind; ISO 2424‑2020 delaminationASTM D1335; ISO 1181 filiform tearGlobal

    When Washing Fastness Relies on Ethylene Chain Mobility

    Textile pigment printing on polyester‑cotton blend knitwear demands that the binder withstand five household launderings without losing >30% of the initial crockfastness. Dairen DA‑108 is added to an aqueous print paste at 12–18 dry‑parts per 100 dry‑parts pigment, the concentration being dictated by the specific surface area of the organic pigment grade and the desired after‑wash color retention benchmarked against ISO 105‑C06 A2S conditions at 40°C. The paste is prepared on a planetary mixer by dispersing the pigment presscake, an acrylic thickener, a polyphosphate sequestrant and the VAE emulsion under vacuum to eliminate entrapped air, then applied through a flat‑bed screen with 125 mesh count and 0.9‑mm squeegee‑blade gap. Drying proceeds in a multi‑zone conveyor oven with residence of 2.5–3.0 minutes at 120°C in zone one and 155°C in zone two, achieving a cross‑linking threshold temperature of 150°C for the incorporated low‑formaldehyde melamine‑formaldehyde external cross‑linker (0.4–0.7% on emulsion solids). Undercure below 145°C results in surface tack that picks lint during garment assembly, whereas over‑cure above 165°C triggers premature yellowing on white grounds, quantified by an increase in b* value of 3.0 units under D65 illuminant. Goods are finished as printed T‑shirts, sweatshirts or promotional tote bags intended for institutional laundry environments. Field audits show that the ratio of ethylene to acetate sequences in the VAE backbone influences the wet‑rub resistance: the ethylene segment imparts molecular flexibility that dissipates mechanical stress during the washing drum tumble, limiting crack formation observed in harder vinyl‑acetate‑rich copolymers. Formulators replacing a portion of DA‑108 with a fully hydrolyzed styrene‑acrylic binder note a drop in wet‑crock results from 4.0 to 2.0 on the AATCC 8‑2016 grey scale, underscoring the specificity of the VAE structure.

    Paper cup converters seeking to replace extrusion‑coated polyethylene with a repulpable barrier layer apply Dairen DA‑108 in a single‑pass curtain‑coating operation at 100–150 m/min line speed. The aqueous coating mixture is set to 35–42% total solids, of which 85–90% is the VAE emulsion, the remainder comprising a montmorillonite‑based platy mineral at 7–10% and a calcium stearate lubricant at 1–2% to permit downstream blanking without scoring damage. The wet film deposit of 45–55 g/m² is dried through a 12‑meter impingement dryer with nozzle air temperature 140–160°C and a web surface temperature plateau of 95–105°C for the final two‑thirds of the oven length, ensuring that the film coalesces to a pinhole‑free thickness of 18–24 µm. Cobb water absorbency tested per TAPPI T 454 om‑21 at 30‑minute exposure is required to stay below 5.0 g/m² for hot‑cup service above 80°C, a property that is linked to the degree of ethylene interpolymerization; laboratory correlation finds that a minimum 15 wt% ethylene content in the VAE backbone is necessary to avoid film whitening and accelerated wicking when in contact with 95°C water. Post‑coating calender‑stack treatment at 70°C and 150 kN/m line force is applied to level the surface and seal micro‑crazes that otherwise appear after 48‑hour ambient aging. Finished cupstock is formed into 250–500 mL single‑wall hot‑drink cups and soup bowls, all within the indirect‑food‑additive provisions of FDA 21 CFR 176.170 components of paper and paperboard in contact with aqueous and fatty foods. Recyclability trials under PTS‑RH 021/97 indicate that DA‑108‑coated board repulps without adhesive stickies when the re‑pulper pH is kept above 7.5, which ionizes the carboxylated latex surface and aids fibre release.

    Cold‑Press Open Time and the MFFT Threshold

    Edge‑gluing of oak and beech hardwood strips for laminated butcher‑block panels employs DA‑108 as a one‑component dispersion, occasionally extended with 1–3% of a water‑dispersible isocyanate hardener to approach D3 water‑resistance classification under EN 204:2016, though in its unmodified state the bond conforms to D2 interior conditions. The adhesive is delivered to a precision roller coater with a 0.15–0.25 mm wet‑film gap, transferring 120–180 g/m² onto the joint faces. Because DA‑108 exhibits a minimum film‑formation temperature of 0°C, the gluing shop must maintain an ambient temperature of at least 10°C to avoid a wet‑edge condition where an outer skin forms prematurely and blocks inter‑diffusion; failure to observe this results in chalk‑line joints with shear strengths below 2.0 N/mm² when tested according to EN 205:2016 24‑hour cold‑press specimens. Open time, measured with a 1.0‑mm notched trowel on 18% moisture‑content beech at 20°C/55% RH, ranges from 8 to 14 minutes, long enough to assemble a 600‑mm‑wide panel without a pre‑activation step. Assembled stacks are cold‑pressed at 0.4–0.6 MPa for 35–50 minutes, followed by a 24‑hour cure at >15°C before sanding. Adding filler such as calcium carbonate beyond 5% of wet adhesive weight diminishes the cohesive strength and causes the shear failure mode to shift from substrate failure to adhesive‑line peel. The finished panels become table tops, counter segments and stair treads that require EN 717‑1 formaldehyde release below 0.1 ppm, readily met by the inherently formaldehyde‑free VAE backbone. Monitoring of the dispersion pH is critical: storing DA‑108 in iron vessels with a damaged lining for more than 48 hours releases Fe²⁺ ions that catalyze the thermal oxidation of the ethylene segment, visible as a pink‑to‑brown discoloration that cannot be corrected and which compromises bond durability under cyclic humidity testing per ANSI/HPVA EF‑1.

    Inorganic Filler Loading Limits in Tuft‑Lock Adhesives

    Pre‑coat and secondary back‑coat compounds for loop‑pile carpet manufacture rely on Dairen DA‑108 to bind calcium carbonate into the needled primary backing at filler loads reaching 60–72% of dry compound weight. The VAE emulsion constitutes 60–75% of the wet latex‑filler slurry, which is prepared in a sweep‑agitated mixing tank where ground limestone (D₅₀ 15 µm) is introduced slowly to avoid agglomeration that would plug the 1.0–1.5 mm slot die of the lick‑roll applicator. Compound viscosity is held at 12,000–20,000 mPa·s (Brookfield RVT, spindle 6, 20 rpm) so that the coating weight of 600–900 g/m² dry add‑on is uniformly distributed across the 4‑metre width. The coated carpet passes into a three‑pass gas‑fired oven where the first zone operates at 130°C to remove bulk water, the second at 155°C for film coalescence, and the third at 120°C to anneal the film and relieve internal stress. Tuft bind, assessed with ASTM D1335‑17 using a 2.5‑mm jaw speed on loop‑pile samples, must exceed 25 N for contract‑grade product; values decline sharply when the filler‑to‑latex ratio surpasses 4.5:1 because the VAE becomes the discontinuous phase and the brittle carbonate skeleton fractures during flex testing. Delamination resistance under ISO 2424:2020, measured as the force to separate secondary jute from primary polypropylene backing, is specified at >15 N/50 mm after 24‑hour water immersion, a performance level that DA‑108‑based compounds attain only when a low‑formaldehyde cross‑linker at 0.3–0.5% on latex solids is co‑reacted; without it, the shear‑thinned latex network loses wet adhesion and the back‑coat separates in a clean peel. Production records highlight sensitivity to oven profile: raising the second‑zone temperature above 165°C induces surface blistering from trapped steam, whereas dropping below 145°C leaves residual moisture above 1.5% that fuels mould growth during maritime container shipment. Finished rolls are cut into 50 cm × 50 cm carpet tiles or broadloom for office fit‑outs and hospitality installations, each unit meeting the smoke‑density and flame‑spread limits of ASTM E648‑19c Class I.

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    Certification & Compliance
    More Introduction

    How DA-108 Differs from Conventional VAE Binders

    Dairen DA-108 is a carboxylated vinyl acetate-ethylene (VAE) copolymer emulsion stabilized with a polyvinyl alcohol (PVOH) protective colloid system. The emulsion is supplied at a nominal solids content of 55.0 ± 0.5 % (ISO 3251, 105 °C, 3 h) with a residual vinyl acetate monomer concentration held below 500 ppm. Brookfield viscosity at 25 °C (spindle 4, 20 rpm) is specified in the range 1,800–2,800 mPa·s, and the pH at delivery falls between 4.0 and 5.0. Minimum film-forming temperature (MFFT) measured per ASTM D2354 is 0 °C, placing DA-108 in the low-Tg segment of VAE dispersions alongside grades intended for cold-weather flooring adhesives and packaging lamination. The defining compositional departure from earlier Dairen VAE grades such as DA-101 or DA-102 is an elevated ethylene incorporation ratio—pushing the copolymer Tg below −5 °C by differential scanning calorimetry—while retaining a carboxylation density configured for latent crosslinking with polyvalent metal ions or water-dispersible isocyanates. This combination of backbone flexibility and reactive functionality allows formulators to eliminate external plasticizers entirely from many adhesive recipes, addressing the plasticizer migration and fogging failures documented in automotive interior assemblies tested under VDA 278 thermal desorption conditions.

    Film Formation Mechanism and Critical Coalescence Parameters

    Coalescence of DA-108 proceeds through a PVOH-mediated interstitial collapse pathway that is highly sensitive to both drying rate and substrate surface energy. On low-energy polymer films such as corona-treated polyethylene (surface energy 38–42 mN/m), wetting is sufficient to achieve continuous film formation at coat weights down to 3 g/m² (dry) without cratering. However, on untreated polypropylene substrates (≤30 mN/m), the emulsion dewets in a pattern consistent with Marangoni-driven film rupture unless a surfactant post-add is introduced at 0.3–0.5 wt% on emulsion solids. The PVOH colloid creates a hydrophilic membrane surrounding each particle; during water evaporation, the collapse of this membrane is exquisitely rate-dependent. When forced-air drying at ≥60 °C is applied before the open time exceeds 45 s, the resulting film develops micro-voids observable under scanning acoustic microscopy—voids that reduce lap shear strength on beechwood by 15–20 % relative to films dried under ambient convection. The recommended open time window for single-component wet lamination with DA-108 is 60–120 s at 23 °C, 50 % RH, a range that accommodates semi-automatic roll-coating lines but may require retarder addition (propylene glycol at 2–4 wt%) on high-speed flatbed laminators exceeding 20 m/min line speed. No pre-drying of the emulsion itself is required at storage humidity below 60 % RH, but when relative humidity during application exceeds 75 %, the equilibrium water content of the PVOH phase delays full coalescence by up to 4 h, a phenomenon documented in tropical climate field reports from Southeast Asian packaging converters. Unlike surfactant-stabilized VAE grades (e.g., Dairen DA-140 series), DA-108 exhibits shear-thinning behavior with a power-law index n of approximately 0.55 in the shear rate regime 10–1,000 s⁻¹. This rheology favors roll-coating and screen printing but places an upper limit on gravure coating speeds: above 150 m/min, the emulsion’s extensional viscosity at the nip exit generates filament rupture patterns (ribbing) that deposit a non-uniform adhesive layer. Production-scale trials on a Rotomec press have confirmed that the addition of 0.1 wt% of a high-molecular-weight polyethylene oxide associative thickener shifts the critical ribbing speed to approximately 180 m/min without altering the crosslinking response.

    Comparative Property Matrix

    The table below positions DA-108 against two adjacent Dairen VAE emulsion grades and a representative acrylic dispersion used in woodworking adhesives. Values are representative production-lot averages obtained from a corrugated box converting operation in Zhejiang, China, over 12 consecutive batches.
    Property DA-108 DA-101 DA-140 (surfactant-stabilized) Acrylic reference (Tg −10 °C)
    Solids content (ISO 3251, 105 °C/3 h)55 ± 0.5 %55 ± 1.0 %54.5 ± 0.5 %50 ± 1.0 %
    Viscosity at 25 °C (mPa·s, Brookfield #4/20 rpm)1,800–2,8002,500–4,000500–1,2003,000–5,000
    MFFT (°C, ASTM D2354)03−2−10
    Ethylene content (mol%, FTIR)14–1610–1217–19
    Carboxylation (acid number, mg KOH/g solid)3–51–20.5–1.08–12
    Set speed on corrugated medium (seconds to fiber tear, 50 μm wet film)4–68–1215–2020–30
    Heat resistance, crosslinked (°C, SAFT per WPS 68 method)110–12080–9075–85130–140
    The elevated ethylene content and carboxylation of DA-108 translate directly into a faster set speed on porous substrates when compared with DA-101, without the water-resistance penalty often associated with high-PVOH colloid protection levels. DA-140 offers a slightly lower MFFT and reduced viscosity due to its surfactant stabilization but lacks internal carboxyl functionality; its crosslinking response is limited to external additions of glyoxal or zirconium salts, both of which reduce pot life to under 4 h. DA-108, in contrast, can be formulated with aluminum nitrate nonahydrate (0.5–1.0 phr) yielding a stable one-part adhesive with more than 24 h of usable pot life at ambient temperature.

    When Polyvinyl Acetate Homopolymer Economics Mislead: Latent Crosslinking Payback

    Cost-per-dry-kilogram comparisons between DA-108 and conventional PVAc homopolymer emulsions (e.g., Dairen DA-200 series) disregard the downstream savings enabled by cold-set performance and plasticizer elimination. PVAc homopolymer with MFFT above 15 °C requires dibutyl phthalate or triacetin at 8–12 wt% on solids to function as a packaging adhesive below 10 °C. That plasticizer loading increases volatile organic compound (VOC) emissions above the limits prescribed in China’s GB 33372-2020 standard for adhesives in interior decoration (≤50 g/L for water-based products). DA-108, formulated neat or with a minor (1–2 wt%) coalescent such as 2,2,4-trimethyl-1,3-pentanediol monoisobutyrate, delivers a calculated VOC content of ≈18 g/L (per ISO 11890-2), ensuring compliance without reformulation. The reactive carboxyl sites further enable post-application insolubilization: on a corrugated cardboard laminating line, immersion tests (24 h in 20 °C water) showed that DA-108 crosslinked with 0.8 phr aluminum nitrate retained 72 % of dry bond strength, while the plasticized PVAc control delaminated completely within 2 h. Published data for this specific configuration in the open literature is limited; the figures cited derive from an in-house trial conducted at a third-party packaging institute under a signed confidentiality covenant, and batch-to-batch reproducibility of the wet-strength figure has a standard deviation of ±6 %. Avoid combination of DA-108 with amine-functional silane adhesion promoters without a thorough pot-life study. The amine catalyzes PVOH transesterification at the particle interface, documented by a rapid viscosity increase exceeding 200 % within 30 min and subsequent grit formation (retained on a 75 μm mesh) that renders the emulsion unsuitable for nozzle-applied bead extrusion. A neutral pH mercaptosilane or an epoxy silane provides equivalent adhesion improvement to polyolefins without triggering this destabilization pathway.

    Regulatory Cross-Reference

    The emulsion meets the compositional requirements of U.S. FDA 21 CFR 175.105 (“Adhesives”) and 21 CFR 176.170 (“Components of paper and paperboard in contact with aqueous and fatty foods”) when used within the specified extraction limits. Under EU Framework Regulation (EC) 1935/2004, DA-108 is supported by a manufacturer’s Declaration of Compliance for food-contact adhesives applied in dry and moist food conditions, with specific migration limits for vinyl acetate monomer (≤12 mg/kg food simulant) and ethylene glycol (≤30 mg/kg) verified per EN 1186 migration testing protocols. REACH registration covers the substance in the tonnage band 1,000–10,000 t/a; the Safety Data Sheet lists no substances of very high concern (SVHC) above 0.1 % w/w. Chinese inventory compliance is confirmed under the existing chemical substance registration number of the parent VAE series. No testing according to ASTM D4236 (chronic health hazard labeling for art materials) indicates a requirement for hazard labeling; the product is classified as non-dangerous goods under UN transport regulations.

    Processing on Twin-Screw Extruder-Integrated Coating Lines

    While DA-108 is predominantly applied by liquid coating, its use as a binder in water-based extrusion primers for BOPP film creates a narrow processing window that merits detailed attention. When the emulsion is predried and compounded at 35 wt% into a polypropylene carrier via a co-rotating twin-screw extruder (L/D 40:1, screw diameter 26 mm), the barrel temperature must be held strictly between 105 °C and 112 °C. Below 105 °C, the PVOH shell does not fully plasticize, leading to lens-shaped undispersed gel domains that appear as fish-eyes in the extruded primer film. Above 112 °C, acetic acid elimination from the VAE backbone initiates autocatalytic hydrolysis, detected as a pH drop in the quenched extrudate from 5.0 to 3.2 and a concurrent molecular weight reduction that lowers the primer’s overlap shear strength by more than 30 %. A vacuum vent at barrel zone 8 (−0.08 MPa gauge) is mandatory to strip residual moisture and monomer. Actual production-scale runs on a Leistritz ZSE 27 extruder have shown that screw configurations with at least two kneading blocks downstream of the feed zone generate sufficient distributive mixing to achieve a gel count below 5 particles/m² (inspected under polarized light at ×10 magnification). Published data for this specific configuration is limited to a single machinery OEM technical bulletin; broader reproducibility has not been confirmed.