[{"data":1,"prerenderedAt":102},["ShallowReactive",2],{"notifications-general-en":3,"product-detail-cannabis-terpenes-en":4,"analysis-product-list-cannabis-all-en":25},"Due to summer holidays, the laboratory will operate on a revised schedule from July 22 to August 9, 2026. Analysis results may take 7 to 10 days from sample receipt. Thank you for your understanding.",{"id":5,"name":6,"description":7,"image":8,"helperInfo":9,"metodDetails":10,"priceDetails":11,"longDescription":12,"sampleAmmount":13,"cycleTime":14,"normalPrice":15,"firstDiscountPrice":16,"secondDiscountPrice":17,"category":18,"compoundsAssesed":24},"101","Terpene profile","Determination of terpene content in the sample is made by using gas chromatography (GC)","analysis\u002Fproducts\u002Fget-budding-72792-unsplash_GpfCp9w.jpg",null,"\u003Cp>The biomass sample is ground with a grinder (homogenization), the appropriate amount is weighed and the sample is then extracted several times with alcohol. The extract or droplets are weighed and diluted with a suitable solvent. The method for determining the content of cannabinoids and terpenes is gas chromatography (GC), in which a flame ionizing detector (FID) is used for detection. The contents are determined by the external standard method, and reference identification solutions are used to identify individual cannabinoids and terpenes.\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp> \u003C\u002Fp>\u003Cp>Detection limit (LOD): 100 ppm or 0,01%. \u003C\u002Fp>\u003Cp>Quantification limit (LOQ): 200 ppm or 0,02%.\u003C\u002Fp>","\u003Cp>Prices are valid for samples when the online registration form is completed by the customer. Otherwise, an additional cost of 2–5 EUR may apply, depending on the discount model.\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"font-size: 14px;\">All prices are without VAT.\u003C\u002Fspan>\u003C\u002Fp>","\u003Cp>The determination of terpene content using gas chromatography with flame ionization detection (GC-FID) is a robust and highly effective method, recognized for its precision and sensitivity in terpene analysis. GC-FID provides a broad linear range, allowing accurate quantification of terpenes, even at varying concentrations. This method excels in its ability to detect terpenes without requiring chromophores, enabling the identification and quantification of compounds that do not absorb in the UV-visible spectrum. The FID detector offers consistent and reliable responses based on the carbon content of the molecules, ensuring accurate results across a wide range of terpene profiles. With GC-FID, terpene analysis is both efficient and comprehensive, making it an excellent choice for reliable terpene profiling.\u003Cbr>\u003C\u002Fp>","\u003Cp>At least 2 g of biomass, 1ml of terpene mixture is required for representative determination. A larger amount guarantees a more representative result.\u003C\u002Fp>","\u003Cp>You can expect the results within 2-5 working days from receiving the sample.\u003C\u002Fp>",57,41,31,{"id":19,"name":20,"subcategory":21,"categoryTitle":22,"categoryImage":23},"36","cannabis","potency","Basic Cannabinoid and Terpene Potency Testing","",[],[26,32,38,45,52,58,64,71,74,81,88,95],{"id":27,"name":28,"description":29,"image":30,"order":9,"linkName":31},"188","Standard Cannabinoid assay in edibles","Determination of cannabinoids in food products","analysis\u002Fproducts\u002Fgummy-bear-1572691_1280.jpg","cannabinoidsinedibles",{"id":33,"name":34,"description":35,"image":8,"order":36,"linkName":37},"99","GC - Cannabinoids and terpenes - FULLspectrum","Determination of cannabinoid and terpene content in the sample is made by using gas chromatography (GC)",1,"fullspectrum",{"id":39,"name":40,"description":41,"image":42,"order":43,"linkName":44},"97","HPLC- cannabinoids assay","Determination of cannabinoids in acidic and activated form by HPLC","analysis\u002Fproducts\u002Fget-budding-72791-unsplash.jpg",2,"hplc",{"id":46,"name":47,"description":48,"image":49,"order":50,"linkName":51},"90","Mycotoxin testing","Testing for presence of mycotoxins in cannabis products","analysis\u002Fproducts\u002FMICOTOX.png",3,"mycotoxins",{"id":53,"name":54,"description":55,"image":56,"order":50,"linkName":57},"91","Microbiological quality testing","Assay for microbiological compliance","analysis\u002Fproducts\u002FPRODUCT_PICTURE_MCB_7LnGDro.png","Microbiological contamination",{"id":59,"name":60,"description":61,"image":62,"order":50,"linkName":63},"98","Basic GC cannabinoid assay- CANNALYSIS","Determination of cannabinoid content in the sample is made by using gas chromatography (GC).","analysis\u002Fproducts\u002Fget-budding-72792-unsplash_1RaLKah.jpg","cannalysis",{"id":65,"name":66,"description":67,"image":68,"order":69,"linkName":70},"100","GC+HPLC assay - OMNIspectrum - extended cannabinoids, acids and terpenes","Analysis of extracts and simple hemp drops using a combination of liquid (HPLC) and gas chromatography (GC)","analysis\u002Fproducts\u002Fcbd-4349287_640.jpg",4,"omnispectrum",{"id":5,"name":6,"description":7,"image":8,"order":72,"linkName":73},5,"terpenes",{"id":75,"name":76,"description":77,"image":78,"order":79,"linkName":80},"92","Heavy metals testing","Heavy metals testing for cannabis products","analysis\u002Fproducts\u002FHeavy_metals.png",6,"heavymetals",{"id":82,"name":83,"description":84,"image":85,"order":86,"linkName":87},"25","Residual Solvents in cannabis products","Determination of residual solvents based on their corresponding  ICH limits","analysis\u002Fproducts\u002Fcbd-4557418_1280_P1qbEQT.jpg",7,"residual-solvents",{"id":89,"name":90,"description":91,"image":92,"order":93,"linkName":94},"94","Semi\u002FSynthetic Cannabinoids Assay & Screening","GCMS Screening for Sythetic cannabinoids","analysis\u002Fproducts\u002Ffractal-8223065_1280.png",8,"ScreeningSytheticCannabinoids",{"id":96,"name":97,"description":98,"image":99,"order":100,"linkName":101},"93","Pesticide testing","Assay of the regulated pesticides for Cannabis products","analysis\u002Fproducts\u002FPesticanna.webp",10,"Pesticides",1785925824906]