Hydrothermal Liquefaction of Water Hyacinth: Effect of Process Conditions and Magnetite Nanoparticles on Biocrude Yield and Composition

In this work, an efficient way of converting the water hyacinth to biocrude oil using magnetite nanoparticles (MNPs) as potential catalysts was demonstrated for the first time. MNPs were synthesised by co-precipitation and used in the hydrothermal liquefaction (HTL) of water hyacinth at different reaction conditions (temperature, reaction time, MNPs to biomass ratio and biomass to water ratio). The best reaction conditions were as follows: temperature— 320 ̊C, reaction time—60 minutes, MNPs to biomass ratio – 0.2 g/g and biomass to water ratio – 0.06 g/g. HTL in presence of MNPs gave higher biocrude yields compared to HTL in absence of MNPs. The highest biocrude yield was 58.3 wt% compared to 52.3 wt% in absence of MNPs at similar reaction conditions. The composition of biocrude oil was analysed using GC-MS and elemental analysis. GC-MS results revealed that HTL in presence of MNPs led to an increase in the percentage area corresponding to hydrocarbons and a reduction in the percentage area corresponding to oxygenated compounds, nitrogenated compounds and sulphur compounds. Elemental analysis revealed an increase in the hydrogen and carbon content and a reduction in the nitrogen, oxygen and sulphur content of the biocrude when HTL was done in presence of MNPs compared to HTL in absence of MNPs. The nanoparticles were recovered from the biochar by sonication and magnetic separation and recycled. The recycled MNPs were still efficient as HTL catalysts and were recycled five times. The application of MNPs in the HTL of water hyacinth increases the yield of biocrude oil, improves the quality of biocrude through removal of hetero atoms, oxygen and sulphur compounds and is a potentially economical alternative to the traditional petroleum catalysts since MNPs are How to cite this paper: Egesa, D., Mulindwa, P., Mubiru, E., Kyomuhimbo, H.D. and Aturagaba, G. (2021) Hydrothermal Liquefaction of Water Hyacinth: Effect of Process Conditions and Magnetite Nanoparticles on Biocrude Yield and Composition. Journal of Sustainable Bioenergy Systems, 11, 157-186. https://doi.org/10.4236/jsbs.2021.114012 Received: August 30, 2021 Accepted: October 12, 2021 Published: October 15, 2021 Copyright © 2021 by author(s) and Scientific Research Publishing Inc. This work is licensed under the Creative Commons Attribution International License (CC BY 4.0). http://creativecommons.org/licenses/by/4.0/


Journal of Sustainable Bioenergy Systems
The bio-crude oil can then be upgraded to gasoline, diesel and kerosene. Since wet biomass is used, it eliminates the need for drying biomass making the process energy efficient. The HTL process uses less than 5% of the total energy used in the biomass drying step of solvent extraction [8]. The HTL process uses water as a reactive medium to convert biomass into liquid crude oil under controlled conditions. In this conversion, the main cellular constituents such as lipids, proteins and carbohydrates are broken down at the high temperatures and pressures. This coupled with hydrolytic attack leads to breakage of biomolecules in the hot compressed water resulting in the production of a biocrude oil [9] with a reasonably high calorific value [10]. Life cycle and techno economic analysis shows that the overall HTL process uses less energy than extraction and transesterification of lipids [11] though more work is needed to increase the biocrude yields and quality. To this end, effort has been invested in investigating the effect of catalysts on the HTL process and its ability to produce higher quality products [12].
Solid nanocatalysts have shown great catalytic potential because they possess large chemically active surface areas and have high chemical and physical stability [12]. These are paramount properties for industrial applications. However, recovery of solid catalysts from the biocrude oil mixture by filtration is a major challenge in their application and it is not economically viable. Therefore, it is important to develop heterogeneous catalysts which can be recovered and recycled easily for further applications in HTL reactions. An interesting potential candidate for this application are magnetite based nanocatalysts because they can easily be recovered magnetically and recycled thereby improving their life span and cost effectiveness. In addition, they possess a high catalytic activity for bio-catalysis, phase transfer catalysis and photocatalysis [13]. Furthermore, they possess a high catalytic activity and large specific surface areas. Despite their catalytic potential, no study has yet demonstrated their catalytic effect on the yield and chemical composition of biocrude oil in the hydrothermal liquefaction of water hyacinth.
Therefore, this work focuses on the investigation of the catalytic effect of magnetite nano particles on the yield and quality of biocrude oils in the HTL of water hyacinth. The water hyacinth was chosen because it is an invasive species on fresh water bodies in Uganda and there is very little work on its catalytic conversion to biofuels. In Uganda, the invasion of the water hyacinth on freshwater bodies has disrupted water transport and hydropower generation, reduced the fish catch and polluted freshwater. Lake Victoria alone has been invaded at a rate of 6300 tonnes per day [14]. Its effects have led to reduction in fish exports hence reduced income to the country. In addition, the increase in industrialisation has resulted in increased energy demand for many developing countries hence the need to increase the energy base of these countries. A potential alternative to this challenge is the production of biofuels from the abundant and environmentally problematic water hyacinth through the HTL process. The objectives of this research are: 1) to produce biocrude oil from the water hyacinth through the hydrothermal liquefaction process, 2) to investigate the effect of HTL process conditions on the yield and quality/composition of biocrude oil and 3) to investigate the catalytic effect of MNPs on the yield and chemical composition of the biocrude oil. This work therefore presents for the first the application of magnetite nanoparticles in the catalytic HTL of the water hyacinth. Magnetite nanoparticles were chosen because they have shown positive results in the catalytic HTL of algae [15]. Some of the differences between water hyacinth and algae are in their composition. Algae has a higher protein content (about 63%) than water hyacinth while the water hyacinth contains more cellulose and lignin. Because of these differences, different reaction pathways are undertaken resulting in production of different quantities of compounds as seen in the results section. Conversion of water hyacinth to biofuel would potentially reduce the negative consequences caused by the water hyacinth as well as contribute to the production of clean, renewable and environmentally friendly liquid fuels hence contributing to the energy needs of the country.

Synthesis of Magnetite Nanoparticles
Magnetite nanoparticles (MNPs) were synthesized by co-precipitation method.
In this method, hexahydrate ferrous chloride (FeCl 3 ·6H 2 O) 5.4 g and tetrahydrate ferrous chloride (FeCl 2 ·4H 2 O) 2.0 g were dissolved in 25 cm 3 of de-ionised deoxygenated water. This solution was then added dropwise to 200 cm 3 of deoxygenated 1.5 molar ammonium hydroxide (NH 4 OH) solution with vigorous stirring at 300 rpm for 2 hours. A black precipitate was immediately formed and it was decanted from the solvent magnetically. The precipitate was then washed with deoxygenated de-ionized (DI) water and ethanol to neutralize residual ions and dried under vacuum conditions at 60˚C for 4 -6 hours. The dried sample was kept under N 2 to prevent oxidation and for later use in the catalytic HTL reactions.

Biomass Processing
The water hyacinth was harvested at the shores of Lake Victoria in Gaba, washed with distilled water and cut into small pieces (both leaves and stems were used). Journal of Sustainable Bioenergy Systems These then were oven dried at 60˚C for 4 to 6 hours and crashed into powder using a motor (drying was done so as to accurately calculate the HTL product yields: biocrude oil, solid residue and gas phase). Figure 1 shows a summary of the steps.
The moisture and ash content in the biomass powder was determined by TGA Analysis. TGA analysis was performed in nitrogen on a TG Setaram 92 microbalance. The ramp rate was 10 ˚C•min −1 from ambient temperature to 1000˚C. A moisture content of 8.0% and an ash content of 16.9% were recorded. The carbon, hydrogen, nitrogen, oxygen and sulphur composition of biomass was also determined and the results presented in Table 1 in the results and discussion section.

Hydrothermal Liquefaction of Water Hyacinth
HTL experiments were carried out in a 50 ml stainless steel batch reactor autoclave (CF series) fitted with a pressure gauge and a thermocouple to record temperature ( Figure 1(c)). The HTL experiments were done at different reaction conditions of residence time, MNPs to biomass ratios, biomass to water ratios and temperature. The reactor was loaded with a specified amount of water hyacinth biomass and distilled water and inserted in a pre-heated furnace/heating mantle set to a specified temperature for the different reaction conditions ( Figure 1(c)). The temperature profile was logged at intervals of 10 seconds using a data logging software. The initial and final pressure was read off directly from the pressure gauge. The effect of MNPs on the biocrude yield and composition was investigated at the following reaction conditions: 1) At temperatures of 280˚C, 290˚C, 300˚C, 310˚C, 320˚C, 330˚C and 340˚C, 2) reaction times of 15, 30, 45, 60, 75 and 90 minutes, 3) ratios of MNPs to biomass of 0, 0.05, 0.1, 0.2, 0.3, 0.4 and 0.5 g/g and biomass: water ratio of 0.2, 0.08, 0.06, 0.04 and 0.03 g/g.
After HTL reactions, the reactor was allowed to cool to room temperature and the products separated as illustrated in Figure 2.
The aqueous phase was filtered using a cellulose filter paper, the water was evaporated in a drier and the biocrude oil in the aqueous phase was dissolved in  DCM. After evaporating the DCM phase, the biocrude yield in the aqueous phase (light oils) was added to the biocrude yield in the solid phase (heavy oil) to get the total biocrude yield. The quantity of dissolved solids in the aqueous phase was determined by evaporating the DCM using a rota evaporator and weighing.
The DCM insoluble solids in the aqueous phase were also weighted. Bio-crudes were extracted from the solid phase using DCM. The DCM was separated from the bio-crude using a rotary evaporator operated under vacuum conditions at 30˚C at a rotation speed of 30 rpm. The weight of bio-crude was measured by subtracting the weight of the glass vial with bio-crude from the weight of empty glass vial. The weight of solid residue was determined by subtracting the weight of dried filter paper with solids from the weight of empty dried filter paper. The MNPs were deposited in the solid residue and recovered by sonication in de-ionised water (for 30 minutes) to weaken the attachment between biomass and MNPs. All experiments were performed in duplicate and error analysis was done by calculating the standard deviation.

Recycling of MNPs
The magnetite nanoparticles were recovered according to our previous method reported in [14]. In this method, the dry solid residue containing MNPs was

Biocrude Oil Analysis
The percentage yield of HTL products (biocrude, solid residue and gas) was calculated using Equation (1). Where MNPs were used the weight of MNPs was subtracted from the solid residue, the yield of biocrude oil and solid residue was calculated on an ash and moisture free basis.
where, P Y is the percentage yield of the product, p W is the weight of product References and samples were weighed to 6 decimal places using a Mettler UMX5 microbalance.

Characterisation of MNPs
The  [20]. Formation of magnetite nanoparticles was also characterised by UV-Vis ( Figure 6). From the UV-Vis spectrum, hydrolysis   . XRD spectra of magnetite nanoparticles confirming the standard magnetite peaks [14]. Figure 6. UV-Vis spectrum for iron oxide magnetic nanoparticles (magnetite) and a mixture of iron (ii) and iron (iii) oxide (ratio 1:2) solution from which magnetite nanoparticles were formed [14]. Journal of Sustainable Bioenergy Systems of iron ions in presence of ammonium hydroxide resulted into removal of metal-ion complex from solution leading to the disappearance of the peak at 300 nm (corresponding to iron (ii) and iron (iii) oxide solution) and to formation of a second broad featureless absorption tail (corresponding to magnetite nanoparticles) which according to [21] is due to formation of magnetite and is as a result of transition in band gap of semiconductor materials. The new peak corresponding to formation of magnetite further confirms that MNPs were successfully synthesised by the co-precipitation process.

Effect of Process Conditions and MNPs on Biocrude Yield and Composition
The process conditions investigated included: reaction time, ratio of MNPs to biomass, ratio of biomass to water and temperatures.

Effect of Reaction Time and MNPs
To  Studies on HTL of oak wood revealed that MNPs owe their catalytic activity on the degradation of cellulose and lignin, promoting the dehydration reactions which are partly responsible for the increase in the biocrude yield [22].
The catalytic effect of MNPs can further be evidenced by a lower solid residue yield in liquefactions involving MNPs and a higher solid residue yield in liquefactions without MNPs (Figure 8(b)). This is an indication that MNPs are favoring the conversion of solid residue to biocrude by favoring reactions that lead to biocrude production to those that lead to solid residue production. Culminating in a reduced solid residue yield and a higher biocrude yield for HTL in presence of MNPs.
The increase in biocrude yield with increasing reaction time in the first 60 minutes can be attributed to the polymerization of the small reactive compounds  [24]. These small reactive compounds are formed through the hydrolysis of biomass at the initial stage of the HTL process. Therefore, in the first 60 minutes, the polymerization reactions to form biocrude oil are more favored. The reduction in biocrude yield at higher reaction times is potentially due to the breakdown of components in the biocrude oil into the gaseous phase. This is evidenced by the increase in the gas yields at higher reaction times ( Figure 7). This observation is also confirmed by the decrease in biocrude viscosity with increase in reaction time [25]. The reduction in biocrude yield at higher reaction times may also be attributed to the decomposition of the intermediate HTL products capable of forming biocrude oil into the gas and the char phase through condensation, crystallization and depolymerization reactions. It can therefore be concluded that increase in biocrude yield in the first 60 minutes was due to increased polymerization reaction while a reduction in biocrude yield beyond 60 minutes was due to increased decomposition of biocrude oil to the gas phase through condensation, crystallization and depolymerization reactions among others. It can be seen that in the first 60 minutes of reaction, the role of

Effect of MNPs: Biomass Ratio
The effect of ratio of MNPs to biomass on biocrude yield was also investigated   [27]. These studies found that optimum yields were obtained at low catalyst mass ratios. This is because at low MNPs (catalyst) ratios there is an even distribution of MNPs on the surface of the biomass resulting in maximum exposure of the catalyst active sites for the biomass conversion reactions leading to increased biocrude yield [14]. On the other hand, the reduction in biocrude yield at higher ratios of MNPs to biomass is attributed to increased particle aggregation at higher concentrations of MNPs [14]. This led to loss of catalyst and a reduced exposure of biomass to the catalyst active sites leading to a reduction in catalytic activity hence the gradual reduction in biocrude yield.
Therefore, the biocrude yield can be enhanced by an optimum amount of catalyst in HTL reactions. The steady increase in biocrude yield from the initial yield of 43 wt% to the peak yield of 58.8 wt% corresponds to the steady reduction in solid residue yield in the same region ( Figure 9). This shows that MNPs played a catalytic role in favouring the conversion of biomass to biocrude oil over the conversion of biomass to solid residue. As a result, there was a reduction in solid residue yield and an increase in biocrude yield. In summary, to achieve higher biocrude oil yields, an optimum mass ratio of MNPs to water hyacinth biomass is needed. Higher ratios of MNPs to biomass will result in a reduced biocrude yield and is not economically viable since a large amount of MNPs is needed.
Under these experimental conditions, the optimum mass ratio of MNPs to biomass is 0.2 g/g.

Effect of Temperature
The effect of temperature on biocrude yield was investigated in presence and absence of MNPs ( Figure 10). The reaction time was maintained at 30 minutes, the biomass to water ratio at 0.06 g/g and the ratio of MNPs to biomass was maintained at 0.2 g/g. The temperature was varied between 280˚C to 340˚C. The biocrude yield increased gradually from 37.4 wt% at 280˚C to a peak of 43.2 wt% at 320˚C. Increase in temperature beyond 320˚C resulted in a gradual reduction in biocrude yield up to its lowest yield of 35.2 wt% at 340˚C. The initial increase in biocrude yield with temperature is attributed to an increased decomposition and depolymerization of biomass into smaller compounds [28]. The reduction in biocrude yield beyond the peak temperature is attributed to the Boudouard reactions and the secondary reactions which are activated at higher temperatures [26] [29]. The increase in gas yields at higher temperatures as seen in Figure 10 temperatures could also be due to the re-arrangement of the smaller compounds in the biocrude oil to form new compounds through cyclisation, condensation and polymerization reactions [28]. Some of these reactions may lead to a slight increase in the solid residue yield as well [26]. These results show that some reactions are more pronounced at certain reaction conditions. The gradual reduction in solid residue yield also confirms that solid residue was decomposed to biocrude oil at lower temperatures and to gas at higher temperatures. A similar trend in biocrude yield was observed when HTL was done in presence of MNPs ( Figure 10(b)). The only difference was that the yield of biocrude oil was higher when MNPs were used in the liquefaction process. HTL in presence of MNPs led to an increment in the biocrude yield by 5.7 wt% at 280˚C, 6.8 wt% at 300˚C, 7.3 wt% at 320˚C and 5.3 wt% at 340˚C. In summary, these results show that MNPs played a catalytic role favoring reaction that led to increase in biocrude oil formation. In addition, HTL of biomass at higher temperatures result in a reduction in biocrude oil yield. Under these reaction conditions, the optimum temperature is 320˚C.

Effect of Biomass: Water Ratio
The effect of biomass to water ratios on biocrude oil yield was also investigated.
The biomass was maintained at 1 g and the amount of water was increased from 6, 12, 18, 24 and to 30 g. The temperature was maintained at 320˚C and the reaction time was kept at 30 minutes ( Figure 11). The liquefaction was done in absence of MNPs, the aim was to determine the optimum biomass to water loading and the effect of biomass to water ratio on biocrude yield.
The biocrude yield increased steadily with increase in the mass ratio of biomass to water. It reached its peak (46 wt%) at a mass ratio of biomass to water of 0.06 g/g then reduced slightly with further increase in the biomass to water ratio, reaching its lowest value of 39 wt% at a ratio of 0.03 g/g (1:30) as seen in Figure 11. Therefore, increasing the amount of water increases the concentration of H + and OH − ions in the reaction medium and hence their reactive effect in converting biomass to biocrude oil increases. As a result, there was an increase in the biocrude oil yield as observed in Figure 11.
However, further increase in the mass of biomass to water ratio had no significant effect on increasing the biocrude yield. This is possibly due to presence of excess H + and OH − ions in the reaction mixture resulting in a reduction in their catalytic activity hence a slight reduction in the biomass conversion to biocrude oil. The solid residue yield decreased steadily with increasing amount of water i.e. The very high solid residue yield initially at 0.2 g/g was potentially due to a very low concentration of H + and OH − ions reducing their catalytic role in converting biomass to biocrude oil. As a result, much of the biomass was not converted to biocrude resulting in a very low biocrude yield ( Figure 11).
Another possible reason for the high solid residue yield and low biocrude yields initially is that at high biomass to water ratios, there is a decreased solvation for biomass components due to limited amount of water [32]. The decrease in solvation limits the reactions that convert biomass to biocrude oil resulting in a high solid residue. A similar observation was reported by Boocock et al. when liquefying wood. They reported that a low water to wood ratio affected the chemical role of water in breaking down wood [33]. It can be concluded that an optimum biomass to water ratio is needed in the HTL of biomass. Under these experimental conditions, the optimum ratio of biomass to water was 1:18 (0.06 g/g). The steady increase in the gas yield with an increase in the amount of water was potentially due to the increase in evaporation brought about by the increased water content. The other possibility is that, higher solvent results in increased solvolysis reactions which promote the splitting of chemical bonds of intermediates to form definite products [28].

Analysis of Biocrude Oil Composition
To analyze the composition or quality of biocrude oils after HTL in presence and absence of MNPs, elemental and GC-MS analysis were carried out on the bio-Journal of Sustainable Bioenergy Systems crude oil produced and the findings were presented in the sections below.

1) Elemental Analysis of biocrude oil
The C, H, N, O and S elemental analysis of biocrude oil was done at different reaction times in presence and absence of MNPs (Table 1 and Figure 12). The aim was to determine the effect of reaction time and MNPs on biocrude composition, High heating value (HHV) and energy recovery (ER). The carbon yield in the biocrude oil was higher than that in the biomass feedstock and HTL in presence of MNPs presented higher yields of carbon than HTL in absence of MNPs (Table 1 and Figure 12   amount of hydrogen in the biocrude oil was higher than that in the biomass from which it was derived ( Table 1). The trend in hydrogen yield for catalyzed and uncatalyzed HTL was similar but catalyzed HTL registered higher yields (Table 1 and Figure 12 These results show that HTL results in an increase in the hydrogen content of the biocrude oil compared to the biomass from which it was derived. In addition, more hydrogen yields can be realized when HTL is done in presence of MNPs. Furthermore, a reaction time of 45 minutes is required to achieve the highest hydrogen content in biocrude oil. It is also clear that MNPs played a catalytic role in favoring reactions that lead to an increased production of hydrogen from biomass. The nitrogen, oxygen and Sulphur content in the biocrude oil was lower than that in the biomass from which it was derived (Table 1).
There was a gradual reduction in the amount of nitrogen, oxygen and Sulphur with increase in reaction time for both catalyzed and uncatalyzed HTL. For catalyzed HTL, the N, O and S yield was much lower compared to uncatalyzed HTL. The nitrogen content in uncatalyzed HTL reduced from 5.4 wt% in the biomass feedstock to 4.5 wt% in biocrude oil after 15 minutes of reaction and to a lowest value of 2.0 wt% after 90 minutes of reaction. In uncatalyzed HTL, the nitrogen content reduced from 5.4 wt% in the biomass feedstock to 3.7 wt% after 15 minutes and then to its lowest value of 1.5 wt% after 90 minutes of reaction ( Figure 12(c)). A similar reducing trend in nitrogen composition with time was also observed in literature during HTL of algae feedstocks [34] [35]. The reduction in nitrogen content with time is possibly due to its portioning into the aqueous phase in form of ammonia. The longer the reaction time the more nitrogen is lost into the aqueous phase, presence of MNPs seemed to fasten this process. These results show that HTL of biomass results in the reduction of the nitrogen content, more denitrogenation can be achieved with increased reaction time and that presence of MNPs can lead to increased removal of nitrogen from the biocrude oil. The MNPs potentially favor reaction which lead to increased denitrogenation of the biocrude oil. Denitrogenation is essential since it improves the fuels high heating value and reduces the release of harmful noxious gases (NOx) into the atmosphere. A high hetero atom content (N and O) in the biofuels imparts undesirable fuel characteristics such as a high viscosity and acidity leading to a negative effect of the storage stability, combustion performance and economic value [19] [36] [37].
The oxygen composition reduced from 52.1 wt% in the biomass feedstock to 27.3 wt% in biocrude oil after 15 minutes of HTL (Figure 12 For the HHV and ER, a similar trend with reaction time was observed for both catalyzed and uncatalyzed ( Figure 13). The HHV increased steadily with increase in reaction time until a peak value was reached then it reduced gradually (Figure 13(a)). For catalyzed HTL, the HHV increased from 11.3 MJ•kg −1 in the biomass feedstock to a peak of 35.5 MJ/kg −1 in the biocrude oil after 60 minutes of liquefaction. Beyond this time, a reduction in HHV was observed. For HTL in absence of MNPs, the HHV increased from 11.3 MJ/kg −1 in the biomass feedstock to the highest value of 33.5 MJ•kg −1 after 60 minutes of HTL. Beyond this a slight reduction in HHV was observed.
The increase in HHV can be attributed to the reduction in the heteroatom (N and O) content of the biocrude oil with time. Some studies have reported a reduction in the HHV values when there was a reduction in the N and O content of the biocrude oils [15] [19] [24]. Increase in HHV with time is also attributed to the increase in the C and H composition of biocrude oil with time as seen in Table 2. The slight reduction in HHV beyond the peak time of 60 minutes is attributed the reduction in the C and H content of the biocrude oil after 60 minutes of HTL. From these results, it is evident that HTL in presence of MNPs resulted into a higher HHV than HTL in absence of MNPs. This is because, when HTL was done in presence of MNPs (catalyzed), a higher C and H content of biocrude oil was achieved. The higher the C and H content the higher HHV.
In addition, the low N and O content in biocrude oil from catalyzed HTL contributed to the increase in the HHV. The higher the N and O content of biocrude the lower the HHV. This combined effect led to biocrude produced in presence of MNPs having a higher HHV than biocrude produced in absence of Journal of Sustainable Bioenergy Systems MNPs. For catalyzed HTL, the energy recovery increased steadily with reaction time up to the peak value of 73% after 60 minutes of reaction and then reduced gradually with increase in reaction time. A similar trend in ER was observed for both catalyzed and uncatalyzed HTL (Figure 13(b)).
The increase in ER with increasing reaction time is attributed to the steady increase in biocrude oil yields and HHVs between 0 to 60 minutes of reaction.
The reduction in ER after 60 minutes of HTL, is attributed to the steady reduction in biocrude oil yields and HHVs beyond 60 minutes of HTL.
The H/C, N/C and O/C atomic ratios were also calculated and as reported in Table 1, there was a general reduction in atomic ratios with liquefaction time.
The O/C ratio indicates the polarity and abundance of polar oxygen containing surface functional groups in the biocrude oil. A higher O/C ratio indicates that there are more polar functional groups in the oil and a lower O/C ratio indicates that there are less polar functional groups in the oil or a reduction in polarity of Journal of Sustainable Bioenergy Systems the oil. This also implies that there is a shift in the adsorption mechanism from mainly ion exchange based to mainly physisorption or Van der Waals forces [38]. Since the Van der Waals forces are weaker, the sorption capacity within the oil drops. This is justified by the reduced viscosity of the biocrude oils at longer reaction times and at higher liquefaction temperatures. Longer liquefaction time is known to have a similar effect on biocrude oil as higher temperature liquefactions.
For the H/C ratio, it is evident form Table 1 that there was a slight reduction in the H/C ratio of the biocrude oil with increasing liquefaction time. It ranged between 1.4 to 1.5 for catalyzed HTL and between 1.3 to 1.49 for uncatalyzed HTL. The H/C ratio indicates the aromaticity of the fuel, the higher the H/C ratio, the higher the energy efficiency of the fuel and the lower the CO 2 emissions from its combustion. A very low H/C ratio like in benzene 1:12 (0.08) implies that it is very difficult to burn the fuel without the production of carbon [37] [38]. Therefore, the lower the H/C ratio the lower the energy efficiency of the fuel and the higher the CO 2 emissions. On the other hand, the higher the H/C ratio the higher the energy efficiency of the fuel and the lower the CO 2 emissions from its combustion.
The N/C ratio reduced steadily from 0.11 in the biomass feedstock to a lowest value of 0.03 in uncatalyzed biocrude oils and to 0.02 in catalyzed biocrude oils (Table 1). This is in agreement with the steady reduction in the N content of the biocrude oil with liquefaction time. The N/C ratio represents the amount of N and C in the bio-oil and is an important process parameter for the solid content in the oil. A high N content in the fuel is undesirable since it leads to production of NOx gases during combustion. These results show that HTL in presence of MNPs leads to an increased removal of N compounds from the biocrude oil hence reduction in the N/C ratio. This reduction is much higher when HTL was done in presence of MNPs.

2) GC-MS Analysis of biocrude oil
To further ascertain the identity and composition of the major compounds in the biocrude oil, and to confirm the effect of MNPs on biocrude composition, GC-MS analysis was done on the biocrude oil produced in presence and absence of MNPs. The identities of the major individual compounds extracted by DCM and their percentage relative areas were determined (Table 2, Figure 14 and Figure 15). Peaks in the GC-MS chromatogram with percentage relative area of less than 1% were not considered. The main compounds found in the biocrude oil were grouped under hydrocarbons, organic acids and esters ( Figure 14). The hydrocarbons grouping consisted of the following compounds: undecane, dodecane, tetradecane, nonadecane, eicosane, heptadecane, octasane, 2 methyl-Pentacosane, Hexacosane, Hopane and Tetratriacontane ( Table 2).   of hydrocarbons in the biocrude oils. The organic acids and esters were present in very small quantities, it is possible that during the HTL process, these may have been converted to hydrocarbons through decarboxylation reactions or other reaction pathways.
Just as in elemental analysis, GC-MS results also revealed a high hydrocarbon content, low composition of oxygenated compounds (acids and esters) and a very low composition of nitrogenated and Sulphur compounds to below detectable levels (below 1%). These results show that HTL of water hyacinth biomass can increase the hydrocarbon composition and reduce the oxygenated, nitrogenated and Sulphur compounds in biocrude oil. In addition, further gains in hydrocarbon yields can be achieved when HTL is done in presence of MNPs.

Recycling of MNPs
After HTL of water hyacinth, the MNPs were largely deposited in the solid residue. These then were magnetically recovered as described in the methods section. The recovered MNPs were then tested for their suitability as HTL catalysts.
The biocrude oil yields for the fresh and recycled MNPs was compared for up to five cycles ( Figure 16). The recycled MNPs were effective in increasing the bio-   cycles culminating in a truly sustainable and potentially economical process.

Conclusions
More work is being done in our research group to upgrade the biocrude oil to acceptable fuel standards.