4.1. Yield and Biometric Characteristics
In the present study, no interaction was observed between PPFD and SD in any of the characteristics analyzed, even on mineral content and phytochemical quality, as further elaborated in the following sections. Given the minimal effect PPFD had, by itself, on those characteristics, our results indicate that the light intensity range tested was not enough to induce substantial changes in the metabolism and, therefore, was not capable of interacting with SD, which directly affected production across all species investigated.
A positive effect of increasing PPFD in FW and DW has been observed only in the green cabbage experiment. Previous studies have reported a wide range of optimal PPFD levels for microgreen production, highlighting the need to identify the level that balances crop performance with the economic viability of the production system [
6,
14,
19,
24,
25].
PPFD values between 330 and 440 µmol m
−2 s
−1 have been considered optimal for Brassicaceae microgreens, whereas 545 µmol m
−2 s
−1 may induce photooxidative stress [
14]. However, conflicting results have also been reported, suggesting that lower PPFD levels may be optimal for microgreen cultivation. For instance, 150 µmol m
−2 s
−1 was identified as an optimal PPFD for microgreen production [
26], while radish microgreens were successfully cultivated under an even lower PPFD of 42 µmol m
−2 s
−1 [
10], a value close to the lowest treatment evaluated in the present study (50 µmol m
−2 s
−1). This treatment produced the best overall results for sunflower, radish, and red cabbage, as it did not differ from the higher PPFD treatments in terms of yield (FW) while requiring substantially less energy. Similarly, increasing PPFD from 105 to 315 µmol m
−2 s
−1 increased mizuna fresh mass by only 15% [
24]. Thus, a threefold increase in PPFD resulted in only a modest increase in productivity, indicating lower photon-use efficiency at the higher PPFD.
A similar response was observed in our green cabbage microgreens experiment. Increasing PPFD from 50 to 150 µmol m
−2 s
−1 increased fresh weight by only about 10% (approximately 0.4 kg m
−2) (
Figure 1A). Although substantially more photons were supplied at 150 µmol m
−2 s
−1, the increase in productivity was relatively small. Moreover, the 200 µmol m
−2 s
−1 treatment resulted in reduced FW, indicating that this PPFD is not advantageous when maximizing yield is the primary objective.
Since microgreens are marketed as fresh products, their commercial value is directly associated with fresh biomass production, which is therefore the primary parameter used to quantify productivity and determine market value [
8]. In contrast, dry mass reflects crop quality by representing the accumulation of carbon and mineral nutrients, which may take the form of various bioactive molecules. Since a PPFD within the range of 50 to 200 µmol m
−2 s
−1 had no significant effect on FW or DW for most species evaluated, the use of 50 µmol m
−2 s
−1 under a 16 h photoperiod is an effective strategy for microgreen production.
Among the crops commercially produced in indoor farming systems, microgreens require the lowest PPFD because they are harvested at the seedling stage, during which growth is strongly supported by seed reserves. These reserves nourish the embryo until the photosynthetic apparatus becomes fully functional, which occurs only after the onset of the light-dependent phase of development. In the present study, this transition occurred after approximately 40% of the crop cycle had elapsed.
Increasing SD elevated FW in radish and green cabbage up to the highest SDs evaluated. In sunflower and red cabbage microgreens, however, the intermediate SDs produced the highest FW. In sunflower, the highest SD (2125 g m
−2) produced an average FW of 7.4 kg m
−2, which was 6% lower than the 7.9 kg m
−2 obtained at 1700 g m
−2. This yield exceeded the value reported in previous research, in which 3.7 kg m
−2 was obtained using an SD of 1696 g m
−2 [
27]. Likewise, a yield of 2.5 kg m
−2 was reported using an SD of 368 g m
−2 [
28], whereas approximately 0.1 kg m
−2 was obtained under an SD of 136 g m
−2 [
29].
For red cabbage, no significant difference in FW was observed between 180 and 235 g m
−2, indicating that the higher SD was unnecessary. This finding is particularly relevant given the relatively high cost of red cabbage seed on the Brazilian market. In contrast, radish reached its highest FW at 408 g m
−2, closely matching the 4.9 kg m
−2 reported using an SD of 306 g m
−2 [
28]. Green cabbage also responded positively to the highest SD. These results indicate that excessive increases in SD may either reduce productivity, as observed in sunflower, or result in a productivity plateau, as observed in red cabbage, in which case further increases in SD are not justified. Similarly, a 120% increase in arugula microgreen yield, from 1.2 to 2.6 kg m
−2, was reported as SD increased from 14 to 55 g m
−2 [
8].
Overall, increasing SD resulted in FW increases of 20, 47, 51, and 32% for sunflower, radish, green cabbage, and red cabbage microgreens, respectively, corresponding to yield gains of 1.4, 1.7, 1.5, and 0.8 kg m−2. These findings highlight the strong influence of seeding density in microgreen productivity and reinforce the importance of selecting an appropriate SD to achieve high yields while maintaining the economic viability of microgreen production systems.
In the sunflower experiment, hypocotyl length (HL) decreased at the highest seeding density (SD), whereas no such effect was observed in the other species. Cotyledon dimensions, however, decreased as SD increased in all species investigated. HL is an important trait determining harvestability and the commercial quality of microgreens [
26,
30]. Taller seedlings facilitate both manual and mechanical harvesting, and a hypocotyl length greater than 5 cm is generally desirable [
25]. In the present study, all species exceeded this threshold regardless of PPFD. When combined with cotyledon length, total seedling height ranged from approximately 7 to 9 cm. Most species cultivated as microgreens have a total seedling length between 5 and 10 cm, measured from the cut point at the base of the hypocotyl to the apex of the cotyledons [
5].
Smaller seeds, such as those of green cabbage and red cabbage, which possess a thin seed coat, exhibited higher yield-to-seed (Y/S) conversion ratios than larger seeds with thick coats, such as sunflower. This is because the seed coat does not contribute to seedling nutrition or fresh weight, although it is included in the total seed weight. Despite the reduction in conversion efficiency as SD increased, productivity increased in all experiments up to a certain seeding density. These results indicate that microgreen productivity is influenced more by the collective contribution of the plant population than by the performance of individual seedlings. Consequently, each species has an optimal seeding density at which yield is maximized.
A low range of light intensity had no effect on the biomass accumulation of sunflower, radish, and green cabbage microgreens, while seed density, an important component of microgreen production, played a major role in determining yield in all species tested. In green cabbage, while a PPFD of 150 µmol m−2 s−1 increased fresh weight in relation to 50 µmol m−2 s−1, the gains were about 10% under a 200% light intensity increase. For comparison, the highest SD resulted in gains of about 52% under an 87% SD increase.
Seeding density outweighed light intensity on the yield of all species investigated, even in the only instance where PPFD had a distinguishable effect. Reducing the energy demands of LED lighting in vertical farming systems is essential for economic feasibility, which can be even further improved by achieving an optimal trade-off between seeding density, seed costs, and fresh yield in microgreens production.
4.2. Mineral Content
Varying light intensity from 50 to 200 µmol m
−2 s
−1 influenced none of the sunflower macronutrient content, and few biometric characteristics (
Figure 2,
Table 2). The lack of PPFD effect in sunflower may be due to its seed morphology, as bigger seeds and consequently cotyledons imply a larger pool of nutrient reserves for germination and initial growth when compared to other species with smaller seeds [
31], therefore not reinforcing nutrient demands at this early stage. Since Brassicaceae seeds are substantially smaller than sunflower seeds, the light stimulus likely had a stronger influence on root-level absorption. Differences in microgreen nutrient content under increased irradiance have also been observed in arugula, a Brassicaceae, though at a larger PPFD range than the one we tested [
32].
Generally, a higher nutrient content can enable plants to increase their metabolite pools, which include bioactive compounds like anthocyanins and carotenoids [
33]. However, the wide array of signaling pathways in the secondary metabolism of plants results in complex interactions, which are often species-dependent. In our experiments, radish microgreens had, for the most part, the same levels of nutrient content, even though the highest SD resulted in an overall lower phytochemical quality (
Table 6). This observation implies that, under a higher number of plants, individual secondary biosynthesis was hindered before primary growth in the form of fresh and dry matter production, which were, in fact, enhanced (
Table 1).
Red and green cabbage microgreens were the most sensitive in relation to macronutrient content under different SD, especially K, Ca, and Mg, where their content lowered as SD increased. That stronger response may be related to their nutritional profile and species-specific patterns of mineral accumulation. K is generally the most abundant macronutrient in Brassicaceae microgreens, followed by P, Ca, and Mg, although substantial variation exists among species and cultivars [
34]. More recent comparisons among microgreen species have likewise demonstrated considerable genotypic variation in K, Ca, and Mg concentrations, where mineral accumulation is strongly dependent on species [
35]. Therefore, the reduction in K, Ca, and Mg concentrations observed with increasing SD should not necessarily be interpreted solely as a reduction in nutrient uptake. Rather, it may reflect changes in the balance between nutrient acquisition and biomass accumulation, particularly as competition increases with plant population density. SD thus represented not only a determinant of microgreen yield but also a factor capable of modifying their nutritional composition, with the magnitude and direction of these responses depending on species and possibly seed reserves.
4.3. Phytochemical Traits
Our findings indicate that, within the range of PPFD levels and species investigated, reducing PPFD does not compromise microgreen phytochemical quality, indicating that 50 µmol m
−2 s
−1 was the most efficient PPFD in this regard. Similar findings have been reported for microgreens grown under relatively low PPFD (105 µmol m
−2 s
−1), which exhibited enhanced nutritional quality [
24]. This response, however, appears to be species-dependent, as higher irradiance may promote anthocyanin accumulation in red amaranth and carotenoid accumulation in arugula microgreens, though at a wider PPFD range of 280 and 600 µmol m
−2 s
−1, respectively [
32,
36]. Although increased phytochemical content may be highly desirable from a nutritional and food-quality perspective, the energy input required to achieve such responses should also be considered when designing microgreen cultivation strategies.
As bioactive compounds with antioxidant capacities, molecules such as anthocyanins and carotenoids are associated with benefits to human health, and microgreens are often reported as promising products due to their inherently high quantities of said compounds [
23,
37]. Even though fresh weight yield is the governing factor in essentially all commercial systems, phytochemical quality may also be considered when defining cultivation parameters such as seed density.
The yield of sunflower microgreens was highest at 1700 g m
−2 SD (
Table 1), which corresponded, for the most part, with a higher phytochemical quality when compared to an SD of 2125 g m
−2, except for SS. On the other hand, AN and CA content in green cabbage microgreens decreased with higher SD, despite the inverse effect SD had on fresh and dry biomass production. This may be attributed to a dilution effect, where constant quantities of a given molecule, combined with an increase in biomass accumulation, lead to lower values per unit of mass [
38]. Interestingly, red cabbage microgreens had increased AN values, despite the same fresh yield under SDs of 180 and 235 g m
−2, meaning that anthocyanin content differs on a genotype basis in relation to plant density. Red cabbage, as red leafy vegetables in general, tends to have a naturally high AN content [
39], evidenced by the fact that the highest AN for green cabbage (1.4 mg 100 g
−1) was about three times lower than that of its red counterpart (4.7 mg 100 g
−1). In this case, individual plant AN synthesis likely was not strongly affected by a denser environment, even though total fresh weight stayed the same.