Solid-State Microwave Drying for Medical Cannabis Inflorescences: A Rapid and Controlled Alternative to Traditional Drying
UZIEL ET AL.
SOLID-STATE MICROWAVE DRYING FOR MEDICAL CANNABIS
The Laboratory of Cancer Biology and Cannabinoid Research, Faculty of Biology, Technion - Israel Institute of Technology, Haifa, Israel.
The Russell Berrie Nanotechnology Institute, Technion - Israel Institute of Technology, Haifa, Israel.
Cannasoul Analytics, Caesarea, Israel.
Goji Research Ltd., Kefar Sava, Israel.
Department of Polymer Materials Engineering, Shenkar College of Engineering, Design and Art, Ramat Gan, Israel.
*Address correspondence to: David Meiri, PhD, The Laboratory of Cancer Biology and Cannabinoid Research, Faculty of Biology, Technion-Israel Institute of Technology, Haifa 3200003, Israel, dmeiri@technion.ac.ilAbstract
Introduction:
As the medical use of Cannabis is evolving there is a greater demand for high-quality products for patients. One of the main steps in the manufacturing process of medical Cannabis is drying. Most current drying methods in the Cannabis industry are relatively slow and inefficient processes.
Materials and Methods:
This article presents a drying method based on solid-state microwave (MW) that provides fast and uniform drying, and examines its efficiency for drying Cannabis inflorescences compared with the traditional drying method. We assessed 67 cannabinoids and 36 terpenoids in the plant in a range of drying temperatures (40°C, 50°C, 60°C, and 80°C). The identification and quantification of these secondary metabolites were done by chromatography methods.
Results:
This method resulted in a considerable reduction of drying time, from several days to a few hours. The multiple frequency-phase combination states of the system allowed control and prediction of moisture levels during drying, thus preventing overdrying. A drying temperature of 50°C provided the most effective results in terms of both short drying time and preservation of the composition of the secondary metabolites compared with traditional drying. At 50°C, the chemical profile of phytocannabinoids and terpenoids was best kept to that of the original plant before drying, suggesting less degradation by chemical reactions such as decarboxylation. The fast-drying time also reduced the susceptibility of the plant to microbial contamination.
Conclusion:
Our results support solid-state MW drying as an effective postharvest step to quickly dry the plant material for improved downstream processing with a minimal negative impact on product quality.
Introduction
Throughout history, the Cannabis plant has been widely used for spiritual and recreational purposes, as well as for its broad therapeutic effects.1 As its medical use continues to evolve, on one hand, and an increasing number of states approve its administration on the other hand,2 a greater demand for effective high-quality products for patients is also emerging.
The Cannabis plant harbors >500 natural compounds from different chemical classes, some belong to primary metabolism, while others represent secondary metabolites.1,3 Among them are phytocannabinoids and terpenoids, secondary metabolites that are biosynthesized in the glandular trichomes of female inflorescences, to which the therapeutic effects of the plant have been mainly attributed.4–6 Cannabis chemovars differ significantly in their chemical composition, that is, the content and profile of these active metabolites. The chemical composition depends on a range of factors, including the genetics of the plant, growth conditions, harvest time, postharvest processing methods, and storage conditions and duration.7–9
Drying is the first critical step in the postharvest processing and preservation of Cannabis. It is the postharvest operation of removing the excess moisture from newly harvested plants to prevent chemical and microbiological degradation.10,11 It is also one of the rate-determining steps in Cannabis manufacturing.
Usually, traditional drying takes place under aeration in closed rooms with controlled temperature and humidity levels for at least 5–6 days12 and up to 2 weeks. Either the whole plant or the branches with inflorescences are hung upside down. As the bud dries, water from the stem slowly migrates into the bud, slowing the drying process. Another variation is “screen drying,” in which trimmed buds are placed on drying screens. In this method, the drying time is shorter due to the large effective surface area available for drying. However, it results in uneven drying as the size of the buds influences the drying rate. Fans, heaters, and dehumidifiers are sometimes used to speed up the drying process. The texture and crispness of the buds are used to determine whether the product is dried.12,13
Currently, there are no models to predict the drying end-point or the overall drying time. In addition to consuming excess energy, this slow process also increases the risk of mold growth and product spoilage since microbes tend to thrive in a humid and wet environment.12,14–16 The drying process may be followed by curing to balance the moisture content in the buds and age the dry Cannabis before consumption.17 This is suggested to reduce the content of starch, sugar, and chlorophyll and improve the resultant flavor. In a pharmaceutical crop, secondary metabolite content is the central focus and less importance is given to taste.18
From a technological perspective, standardizing and optimizing the drying process is part of the trend toward high-quality and chemically standardized Cannabis products.11,19,20 Alternative drying methods have been proposed in recent years to save time, reduce the risk of microbial load, and improve product uniformity and consistency.12 Among these are microwave (MW)-vacuum and radiofrequency (RF), which do not rely on conduction and convection to deliver thermal energy as in conventional drying.21–23 Rather, electromagnetic waves are transferred directly to the heated product, providing fast and volumetric heating.24 RFs range from 3 kHz to 300 GHz, with MW frequencies as a subset that includes frequencies from 300 MHz to 300 GHz.19 These radiofrequencies are able to penetrate deeply into dense and large-size products, resulting in even heating.24,25
In this study, we examined a solid-state MW heating technology as a possible method to dry Cannabis inflorescences rapidly and efficiently without deteriorating the quality of the resulting product. Solid-state MW allows for a high degree of control of the drying process relative to alternatives such as magnetron.26 We investigated how MW drying affects the composition of phytocannabinoids and terpenoids in medical Cannabis inflorescences.
Materials and Methods
Drying apparatus and operation method
The drying apparatus was a prototype based on a Miele oven Model H6800BM (Gütersloh, Germany) used for cooking that has been modified to eliminate the heating function. The apparatus combines an infrared (IR) sensor for Cannabis temperature measurement (Panasonic Grid-EYE® AMG8833; Newark, NJ) and an RF module with a feedback control loop that was designed by GOJI (Kefar Sava, Israel). The RF module is controlled by an external computer (Lenovo T440, operation system—windows 7, I5, 4 GB RAM) with software developed by GOJI that displays the parameters relating to the drying process, including the forward power, reflected power, frequency, phase, energy absorption, and temperature. The module has a minimum and maximum frequency band operation of 2400 to 24,500 MHz, respectively, with a maximal transmitting power of 250 W. Dedicated shelves were designed and built for this oven to enable Cannabis drying in this prototype. A fan was included in the system to circulate the air and remove the moisture.
Moisture measurement
The moisture content (dry basis) of the inflorescences was determined by the loss on drying method27 immediately after harvesting (fresh) and following the drying processes using a Mettler Toledo HB43 moisture analyzer (Agentek, Yakum, Israel). Briefly, the method used a drying temperature of 105°C, a standard heating profile, and an auto switch-off criterion (weight change of 1 mg within a 25-sec interval). The dried inflorescences were ground to a fine powder using an electric grinder and tested in triplicates.
Water activity measurement
The water activity of Cannabis inflorescences (n=3) dried either traditionally or by MW drying at 50°C was measured using a Rotronic HygroPalm hygrometer (Bassersdorf, Switzerland).
Scanning electron microscopy
Cannabis inflorescences after traditional drying or MW drying at 50°C were observed using scanning electron microscopy (SEM). The dried samples were sputter coated with Au-Pd alloy and then imaged using a JEOL JSM-IT200 SEM operated at an acceleration voltage of 20 kV.
Chemical analysis of phytocannabinoids and terpenoids
Identification and quantification of phytocannabinoids were done by liquid chromatography methods.8,28 Terpenoid analysis was performed by gas chromatography/mass spectrometry (GC/MS) as described by Shapira et al.29 The results were normalized to the weight of the dry sample according to the moisture content. The full details are available in the Supplementary Data.
Microbiological assay
Inflorescences immediately after harvesting and following traditional drying or MW drying at 50°C were sent to the Institute for Food Microbiology and Consumer Goods Ltd. (Nesher, Israel) for microbiological examination. The samples were tested for total combined yeast and mold count (TYMC) according to USP <61 > /Ph. Eur2.6.12. Microbial counts were expressed as colony-forming units per gram of sample (CFU/g).
Statistical analyses
Statistical analyses were conducted using GraphPad Prism software version 9.0.0 (GraphPad, Inc.). A value of p≤0.05 was considered significant.
Results
Discussion
There is a growing need for standardized and consistent high-quality Cannabis products. As traditional drying methods require an extended period of time and result in nonuniform drying, alternative methods are needed.
In this study, we found solid-state MW drying achieved similar moisture evaporation from Cannabis inflorescences in only a few hours, rather than several days with traditional drying. The solid-state technology allows for frequency control, which is practically impossible in magnetron technology used in conventional MW ovens, and power control, which is more subtle than allowed by commonly used magnetrons.39 Moreover, solid-state power amplifiers have the ability to provide feedback on the dynamic state of the processed material.26 This technology, therefore, produces a more uniform and consistent energy field during the heating process, resulting in an improved product in shorter times. Radiofrequencies excite and heat products internally, and not just the outer layers. The bulk heating effect produces uniform heating throughout the material, avoiding the large temperature gradient that occurs in conventional heating systems.40,41
As this method relies on heating and high temperatures were shown to affect the composition of cannabinoids in the plant,8,32,33 we evaluated the cannabinoid derivatives at different drying temperatures. At a drying temperature of 80°C, the concentration of Δ9-THC was high, probably due to the high temperature that promotes the heat-induced decarboxylation of Δ9-THCA into Δ9-THC.8 Of the different temperatures tested, the MW drying temperature that shortens the drying time substantially while retaining the phytocannabinoid composition of the Cannabis inflorescences was in the range of 50–60°C. For terpenoids, which are more volatile, at 40°C and 50°C their concentrations were relatively similar to that of traditional drying. Thus, the optimal drying temperature that significantly shortens the time while retaining the composition of the secondary metabolites was found to be 50°C.
During MW drying, the reflected energy is constantly collected and assessed, allowing the adjustment of the frequency and power parameters through the heating process. Since the dielectric characteristics of water change as a function of frequency and temperature,42 energy absorption during drying raises the temperature of the water and affects the reflected power, which enables the algorithm to select the relevant FPCs and estimate the plant moisture condition. The value of FPC provides a good indication of moisture content and the termination point of drying.
The significantly shorter drying time relative to traditional drying also reduces the potential risk of mold growth and pest contamination during the drying period, as was also previously reported.13,43 This is of major importance since Cannabis products, and especially products for medical purposes, are held to strict microbial specifications.43,44 However, although dried products are considered stable, certain pathogens, such as Salmonella, may still survive in low moisture environments upon sufficient rehydration.45,46
Importantly, scaling up is necessary for MW drying to be an eligible alternative for traditional drying, and the described technology can be scaled up to allow fast drying of large batches concurrently. The scaling up for industrial applications would focus on energy per mass. The overall energy of the system would be increased by increasing the number of transition sources and using an industrial conveyor capable of containing large masses.
Conclusions
Solid-state MW drying is efficient and faster than traditional drying. The rapid removal of moisture shortens the drying process from days to hours and reduces the time available for microbial growth. At a drying temperature of 50°C, the chemical profile of phytocannabinoids and terpenoids was best kept to that of plants dried traditionally, suggesting less degradation by chemical reactions. Importantly, the moisture content assessment was achieved based on the FPC states of the system, allowing for the prediction of the drying termination end-point. Thus, MW drying provides an efficient and controlled post-harvest step for drying Cannabis inflorescences.
Supplementary Material
Acknowledgment
The authors thank Cronos Group for providing the Cannabis samples on which this study was based.
Author Disclosure Statement
No competing financial interests exist.
Funding Information
No funding was received for this article.
Supplementary Material
Untitled section
Boxed Text
Cite this article as: Uziel A, Milay L, Procaccia S, Cohen R, Burstein A, Sulimani L, Shreiber-Livne I, Lewitus D, Meiri D (2024) Solid-state microwave drying for medical cannabis inflorescences: a rapid and controlled alternative to traditional drying, Cannabis and Cannabinoid Research 9:1, 397–408, DOI: 10.1089/can.2022.0051.
Abbreviations Used
- Δ9-THC
- Δ9-tetrahydrocannabinol
- CBC
- cannabichromene
- CBD
- cannabidiol
- CBG
- cannabigerol
- CBL
- cannabicyclol
- CBN
- cannabinol
- ESI-LC/MS
- electrospray ionization liquid chromatography mass spectrometry
- FPC
- frequency-phase combination
- GC/MS
- gas chromatography/mass spectrometry
- HPLC-UV
- high performance liquid chromatography with an ultraviolet detector
- IR
- infrared
- MW
- microwave
- RF
- radiofrequency
- SEM
- scanning electron microscopy
- THCA
- tetrahydrocannabinolic acid
- TYMC
- total combined yeast and mold count